US20160077074A1 - Interconnected corrugated carbon-based network - Google Patents
Interconnected corrugated carbon-based network Download PDFInfo
- Publication number
- US20160077074A1 US20160077074A1 US13/725,073 US201213725073A US2016077074A1 US 20160077074 A1 US20160077074 A1 US 20160077074A1 US 201213725073 A US201213725073 A US 201213725073A US 2016077074 A1 US2016077074 A1 US 2016077074A1
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- Prior art keywords
- interconnected
- carbon
- around
- expanded
- based network
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Abandoned
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- C04B2237/00—Aspects relating to ceramic laminates or to joining of ceramic articles with other articles by heating
- C04B2237/50—Processing aspects relating to ceramic laminates or to the joining of ceramic articles with other articles by heating
- C04B2237/72—Forming laminates or joined articles comprising at least two interlayers directly next to each other
-
- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02A—TECHNOLOGIES FOR ADAPTATION TO CLIMATE CHANGE
- Y02A50/00—TECHNOLOGIES FOR ADAPTATION TO CLIMATE CHANGE in human health protection, e.g. against extreme weather
- Y02A50/20—Air quality improvement or preservation, e.g. vehicle emission control or emission reduction by using catalytic converters
Definitions
- the present disclosure provides an interconnected corrugated carbon-based network and an inexpensive process for making, patterning, and tuning the electrical, physical and electrochemical properties of the interconnected corrugated carbon-based network.
- Methods for reducing graphite oxide have included chemical reduction via hydrazine, hydrazine derivatives, or other reducing agents, high temperature annealing under chemical reducing gases and/or inert atmospheres, solvothermal reduction, a combination of chemical and thermal reduction methods, flash reduction, and most recently, laser reduction of GO.
- chemical reduction via hydrazine, hydrazine derivatives, or other reducing agents high temperature annealing under chemical reducing gases and/or inert atmospheres
- solvothermal reduction a combination of chemical and thermal reduction methods
- flash reduction flash reduction
- laser reduction of GO laser reduction
- the present disclosure provides a method of producing an interconnected corrugated carbon-based network.
- the interconnected corrugated carbon-based network produced has a combination of properties that includes high surface area and high electrical conductivity in an expanded network of interconnected carbon layers.
- the method produces a patterned interconnected corrugated carbon-based network.
- an initial step receives a substrate having a carbon-based oxide film. Once the substrate is received, a next step involves generating a light beam having a power density sufficient to reduce portions of the carbon-based oxide film to an interconnected corrugated carbon-based network. Another step involves directing the light beam across the carbon-based oxide film in a predetermined pattern via a computerized control system while adjusting the power density of the light beam via the computerized control system according to predetermined power density data associated with the predetermined pattern.
- the substrate is a disc-shaped, digital versatile disc (DVD) sized thin plastic sheet removably adhered to a DVD sized plate that includes a DVD centering hole.
- DVD digital versatile disc
- the DVD sized plate carrying the disc-shaped substrate is loadable into a direct-to-disc labeling enabled optical disc drive.
- a software program executed by the computerized control system reads data that defines the predetermined pattern.
- the computerized control system directs a laser beam generated by the optical disc drive onto the disc-shaped substrate, thereby reducing portions of the carbon-based oxide film to an electrically conductive interconnected corrugated carbon-based network that matches shapes, dimensions, and conductance levels dictated by the data of the predetermined pattern.
- FIG. 1 depicts the label side of a prior art direct-to-disc labeling type CD/DVD disc.
- FIG. 2 is a schematic of a prior art direct-to-disc labeling type optical disc drive.
- FIG. 3 is a process diagram for an exemplary process for providing graphite oxide (GO) films on a substrate.
- GO graphite oxide
- FIG. 4 is a process diagram for laser scribing an interconnected corrugated carbon-based network and then fabricating electrical components from the interconnected corrugated carbon-based network.
- FIG. 5 is a line drawing of a sample of the interconnected corrugated carbon-based network of the present embodiments.
- FIG. 6A is an artwork image of a man's head covered with circuits.
- FIG. 6B is a photograph of a GO film after the artwork image of FIG. 6A is directly patterned on the GO film using the laser scribing technique of the present disclosure.
- FIG. 7 is a graph that provides a comparison between changes in electrical conductivity by reducing the GO film of FIG. 6B by using various grayscale levels to laser scribe the artwork of FIG. 6A to produce the patterned GO film of FIG. 6B .
- FIG. 8A is a scanning electron microscope (SEM) image that illustrates an infrared laser's effect on GO film prior to laser treatment on the right side of the image in contrast to an aligned, interconnected corrugated carbon-based network on the left side of the image.
- SEM scanning electron microscope
- FIG. 8B is an SEM image showing that an interconnected corrugated carbon-based network has a thickness that is approximately 10 times larger in comparison to that of untreated GO film.
- FIG. 8C is an SEM image showing a cross-sectional view of a single laser converted interconnected corrugated carbon-based network.
- FIG. 8D is an SEM image showing a greater magnification of a selected area within the interconnected corrugated carbon-based network in FIG. 8C .
- FIG. 9 compares a powder X-ray diffraction (XRD) pattern of the interconnected corrugated carbon-based network with both graphite and graphite oxide diffraction patterns.
- XRD powder X-ray diffraction
- FIG. 10 is a plot of log 10 of peak current versus log 10 of an applied voltammetric scan rate.
- FIGS. 11A-11E are graphs related to Raman spectroscopy analysis.
- FIG. 12A is a structural diagram showing a set of interdigitated electrodes made of interconnected corrugated carbon-based networks with dimensions of 6 mm ⁇ 6 mm, spaced at ⁇ 500 ⁇ m, that are directly patterned onto a thin film of GO.
- FIG. 12B is a structural diagram showing the set of interdigitated electrodes transferred onto another type of substrate.
- FIG. 13 shows the sensor response for a patterned flexible set of interdigitated electrodes that are made of interconnected corrugated carbon-based networks that are exposed to 20 ppm of nitrous oxide (NO 2 ) in dry air.
- NO 2 nitrous oxide
- FIGS. 14A-14D shows SEM images illustrating the growth of platinum (Pt) nanoparticles onto a scaffold made of an interconnected corrugated carbon-based network with respect to electrodeposition times corresponding to 0, 15, 60 and 120 seconds.
- FIG. 15 compares the CV profiles of GO, graphite and electrodes made of interconnected corrugated carbon-based networks in an equimolar mixture of 5 mM K 3 [Fe(CN) 6 ]/K 4 [Fe(CN) 6 ] dissolved in 1.0 M KCl solution at a scan rate of 50 mV/s.
- the present disclosure provides an inexpensive process for making and patterning an interconnected corrugated carbon-based network having stringent requirements for a high surface area with highly tunable electrical conductivity and electrochemical properties.
- the embodiments described herein not only meet these stringent requirements, but provide direct control over the conductivity and patterning of interconnected corrugated carbon-based networks while creating flexible electronic devices in a single step process.
- the production of these interconnected corrugated carbon-based networks does not require reducing agents, or expensive equipment.
- the simple direct fabrication of interconnected corrugated carbon-based networks on flexible substrates therefore simplifies the development of lightweight electronic devices.
- the interconnected corrugated carbon-based networks can be synthesized on various substrates, such as plastic, metal, and glass.
- an all-organic NO 2 gas sensor, a fast redox active electrode, and a scaffold for the direct growth of platinum (Pt) nanoparticles are demonstrated.
- the interconnected corrugated carbon-based networks are conducting films produced using a common and inexpensive infrared laser that fits inside a compact disc/digital versatile disc (CD/DVD) optical drive unit that provides a direct-to-disc label writing function.
- CD/DVD compact disc/digital versatile disc
- LightScribe (Registered Trademark of Hewlett Packard Corporation) and Label Flash (Registered Trademark of Yamaha Corporation) are exemplary direct-to-disc labeling technologies that pattern text and graphics onto the surface of a CD/DVD disc.
- LightScribe DVD drives are commercially available for around $20 and the LightScribing process is controlled using a standard desktop computer.
- FIG. 1 depicts the label side of a standard direct-to-disc labeling type CD/DVD disc 10 that includes a label area 12 and a clamping area 14 that surrounds a centering hole 16 .
- a dye film 18 covers the label area 12 and is sensitive to laser energy that is typically directed onto the label area 12 to produce a permanent visible image that may comprise graphics 20 and text 22 .
- a position tracking indicia 24 is usable by an optical disc drive (not shown) to accurately locate an absolute angular position of the CD/DVD disc 10 within the optical disc drive so that the graphics 20 and/or text 22 can be re-written to provide increased contrast.
- the position tracking indicia 24 is usable by the optical disc drive to allow additional graphics and/or text to be written without undesirably overwriting the graphics 20 and/or text 22 .
- FIG. 2 is a schematic of a prior art direct-to-disc labeling type optical disc drive system 26 .
- the CD/DVD disc 10 is depicted in cross-section and loaded onto a spindle assembly 28 that is driven by a CD/DVD spindle motor 30 .
- the label area 12 is shown facing a laser assembly 32 that includes a label writer laser (LWL) 34 , a lens 36 , and a focus actuator 38 .
- the LWL 34 is typically a laser diode.
- Exemplary specifications for the LWL 34 includes a maximum pulse optical power of 350 mW at 780 nm emission and a maximum pulse output power of 300 mW at 660 nm emission.
- a laser beam 40 emitted by the LWL 34 is focused by the lens 36 that is alternately translated towards and away from the LWL 34 by the focus actuator 38 in order to maintain focus of the laser beam 40 onto the label area 12 of the CD/DVD disc 10 .
- the laser beam 40 is typically focused to a diameter that ranges from around 0.7 ⁇ m to around 1 ⁇ m.
- the laser assembly 32 is responsive to a control system 42 that provides control signals 44 through an optical drive interface (ODI) 46 .
- the control system 42 further includes a central processor unit (CPU) 48 and a memory 50 .
- Label image data (LID) having information needed to realize a permanent image to be written onto the label area 12 of the CD/DVD disc 10 is processed by the CPU 48 , which in turn provides an LID stream signal 52 that pulses the LWL 34 on and off to heat the dye film 18 to realize the image defined by the LID.
- the CPU 48 also processes the LID through the ODI 46 to provide a position control signal 54 to a radial actuator 56 that translates the laser assembly 32 in relation to the label area 12 in response to position information contained in the LID.
- the optical disc drive system 26 monitors the focus of the laser beam 40 with an optical receiver (not shown), so that the ODI 46 can generate a focus control signal 58 for the focus actuator 38 .
- the ODI 46 also provides a motor control signal 60 for the CD/DVD spindle motor 30 that maintains an appropriate rotation speed of the CD/DVD disc 10 while a label writing process is ongoing.
- the LWL 34 is used exclusively for label writing directly to the label area 12 of the CD/DVD disc 10 and a separate laser diode (not shown) is used to write and/or read data to/from a data side 62 of the CD/DVD disc 10 .
- the LWL 34 is used for label writing and data reading and/or writing.
- the CD/DVD disc 10 is flipped over to expose the data side 62 of the CD/DVD disc 10 to the laser beam 40 .
- the laser assembly 32 includes optical pick-up components (not shown) such as a beam splitter and at least one optical receiver.
- the output power of the LWL 34 is typically around 3 mW during data read operations.
- a carbon-based film is substituted for the dye film 18 ( FIG. 1 ).
- graphite oxide (GO) is synthesized from high purity graphite powder using a modified Hummer's method. Dispersions of GO in water (3.7 mg/mL) are then used to make GO films on various substrates.
- substrates include but are not limited to polyethylene terephthalate (PET), nitrocellulose membrane (with 0.4 ⁇ m pore size), aluminum foil, carbonized aluminum, copper foil, and regular copier paper.
- a process 100 begins with providing graphite powder 64 .
- the graphite powder 64 undergoes an oxidation reaction using the modified Hummer's method to become GO 66 (step 102 ).
- An exfoliation procedure produces exfoliated GO 68 (step 104 ).
- the exfoliation procedure may be accomplished via ultrasonication. It is to be understood that the exfoliated GO 68 results from a partial exfoliation and not a complete exfoliation to a single layer of GO.
- a substrate 70 carries a GO film 72 that is produced by a deposition procedure that deposits the exfoliated GO 68 onto the substrate 70 (step 106 ).
- a GO film 72 is made by either drop-casting or vacuum filtering GO dispersions onto the substrate 70 that is the size of a CD/DVD disc.
- the GO film 72 is typically allowed to dry for 24 hours under ambient conditions. However, controlling conditions to expose the GO film 72 to a relatively lower humidity and relatively higher temperature will dry the GO film 72 relatively quickly.
- the term GO herein refers to graphite oxide.
- individual ones of the GO film(s) 72 are then affixed to a substrate carrier 74 , which has dimensions similar to the CD/DVD disc 10 (FIG. 1 )(step 108 ).
- the substrate carrier 74 carrying the substrate 70 with the GO film 72 is loaded into the optical disc drive system 26 ( FIG. 2 ) such that the GO film 72 faces the LWL 34 for laser treatment (step 110 ).
- the present embodiments use the GO film 72 in place of the dye film 18 ( FIG. 1 ).
- the substrate carrier 74 can be a rigid or semi-rigid disc onto which the GO film 72 can be fabricated directly. In that case, the substrate carrier 74 replaces the function of the substrate 70 .
- Images 76 for realizing electrical components 78 are patterned in concentric circles, moving outward from the center of the substrate carrier 74 (step 112 ).
- the laser irradiation process results in the removal of oxygen species and the reestablishment of sp 2 carbons. This causes a change in the conductivity of the GO film 72 with a typical resistance of >20 MO/sq to become a relatively highly conducting plurality of expanded and interconnected carbon layers that make up an interconnected corrugated carbon-based network 80 .
- the number of times the GO film 72 is laser treated results in a significant and controllable change in the conductivity of the interconnected corrugated carbon-based network 80 .
- the interconnected corrugated carbon-based network 80 has a combination of properties that include high surface area and high electrical conductivity in an expanded interconnected network of carbon layers.
- the plurality of expanded and interconnected carbon layers has a surface area of greater than 1400 m 2 /g.
- the plurality of expanded and interconnected carbon layers has a surface area of greater than 1500 m 2 /g.
- the surface area is around about 1520 m 2 /g.
- the plurality of expanded and interconnected carbon layers yields an electrical conductivity that is greater than about 1500 S/m.
- the plurality of expanded and interconnected carbon layers yields an electrical conductivity that is greater than about 1600 S/m.
- the plurality of expanded and interconnected carbon layers yields an electrical conductivity of around about 1650 S/m. In still another embodiment, the plurality of expanded and interconnected carbon layers yields an electrical conductivity that is greater than about 1700 S/m. In yet one more embodiment, the plurality of expanded and interconnected carbon layers yields an electrical conductivity of around about 1738 S/m. Moreover, in one embodiment, the plurality of expanded and interconnected carbon layers yields an electrical conductivity that is greater than about 1700 S/m and a surface area that is greater than about 1500 m 2 /g. In another embodiment, the plurality of expanded and interconnected carbon layers yields an electrical conductivity of around about 1650 S/m and a surface area of around about 1520 m 2 /g.
- the electrical components 78 comprising electrodes 82 used in the fabrication of a device 84 are laser irradiated 6 times before reaching the relatively high conductivity of around about 1738 S/m. The laser irradiation process takes about 20 minutes per cycle.
- the substrate 70 carrying the interconnected corrugated carbon-based network 80 and any remaining GO film 72 is removed from the substrate carrier 74 (step 114 ).
- the interconnected corrugated carbon-based network 80 is fabricated into the electrical components 78 that make up the device 84 (step 116 ).
- portions of the interconnected corrugated carbon-based network 80 on the substrate 70 are cut into rectangular sections to make the electrical components 78 , which include the electrodes 82 formed from the interconnected corrugated carbon-based network 80 .
- the interconnected corrugated carbon-based network 80 possesses a very low oxygen content of only 3.5%. In other embodiments, the oxygen content of the expanded and interconnected carbon layers ranges from around about 1% to around about 5%.
- FIG. 5 is a line drawing of a sample of the interconnected corrugated carbon-based network 80 , which is made up of the plurality of expanded and interconnected carbon layers that include corrugated carbon layers such as a single corrugated carbon sheet 86 .
- each of the expanded and interconnected carbon layers comprises at least one corrugated carbon sheet that is one atom thick.
- each of the expanded and interconnected carbon layers comprises a plurality of corrugated carbon sheets that are each one atom thick.
- the thickness of the interconnected corrugated carbon-based network 80 was found to be around about 7.6 ⁇ m.
- a range of thickness of the plurality of expanded and interconnected carbon layers making up the interconnected corrugated carbon-based network 80 is from around 7 ⁇ m to 8 ⁇ m.
- FIGS. 6A and 6B a complex image formed by the direct laser reduction of GO is shown in FIGS. 6A and 6B .
- FIG. 6A is an artwork image of a man's head covered with circuits.
- FIG. 6B is a photograph of a GO film after the artwork image of FIG. 6A is directly patterned on the GO film using the laser scribing technique of the present disclosure.
- any part of the GO film that comes in direct contact with the 780 nm infrared laser is effectively reduced to an interconnected corrugated carbon-based network, with the amount of reduction being controlled by the laser intensity; a factor that is determined by power density of the laser beam impinging on the GO film.
- FIG. 6B is an effective print of the original image of FIG. 6A .
- the image of FIG. 6B is made up of various reductions of the GO film.
- the darkest black areas indicate exposure to the strongest laser intensities, while the lighter gray areas are only partially reduced.
- different grayscale levels directly correlate with the laser's intensity, it is possible to tune the electrical properties of the generated interconnected corrugated carbon-based network over five to seven orders of magnitude in sheet resistance ( ⁇ /sq) by simply changing the grayscale level used during the patterning process.
- ⁇ /sq sheet resistance
- This method is sensitive enough to differentiate between similar grayscale levels as shown in the graph of FIG. 7 , where the sheet resistance varies significantly with only a small variation in grayscale level.
- the number of times a GO film is laser treated results in a significant and controllable change in sheet resistance. Each additional laser treatment lowers the sheet resistance as seen in FIG.
- FIG. 8A is an SEM image that illustrates the infrared laser's effect on GO film prior to laser treatment on the right side of the image in contrast to an aligned, interconnected corrugated carbon-based network on the left side of the image that occurs after being reduced with the infrared laser.
- the image not only gives a clear definition between the interconnected corrugated carbon-based network and untreated GO regions, but also demonstrates the level of precision possible when using this method as a means to pattern and reduce GO.
- the regions of interconnected corrugated carbon-based network, which result from the laser treatment, can be further analyzed through cross-sectional SEM.
- FIG. 8B is an SEM image showing a cross-sectional view of a free standing film of laser treated and untreated GO film, which shows a significant difference between GO film thicknesses.
- an interconnected corrugated carbon-based network increases in thickness by approximately 10 times in comparison to that of untreated GO film.
- a range of thickness of the plurality of expanded and interconnected carbon layers is from around 7 ⁇ m to around 8 ⁇ m.
- an average thickness of the plurality of expanded and interconnected carbon layers is around 7.6 ⁇ m.
- FIG. 8C is an SEM image showing a cross-sectional view of a single interconnected corrugated carbon-based network, which shows an expanded structure that is a characteristic of the interconnected corrugated carbon-based network of the present disclosure.
- FIG. 8D is an SEM image showing a greater magnification of a selected area within the corrugated carbon-based network in FIG. 8C .
- the SEM image of FIG. 8D allows the thickness of the plurality of expanded and interconnected carbon layers to be calculated to be between 5-10 nm.
- the number of carbon layers in the plurality of expanded and interconnected carbon layers making up the interconnected corrugated carbon-based network is above 100.
- the number of carbon layers in the plurality of expanded and interconnected carbon layers is greater than 1000.
- the number of carbon layers in the plurality of expanded and interconnected carbon layers is greater than 10,000.
- the number of carbon layers in the plurality of expanded and interconnected carbon layers is greater than 100,000.
- the SEM analysis shows that although an infrared laser emission is only marginally absorbed by GO, enough power and focus (i.e., power density) can cause sufficient thermal energy to efficiently reduce, deoxygenate, expand, and exfoliate the GO film. Moreover, the surface area of the interconnected corrugated carbon-based network is greater than about 1500 m 2 /g.
- the interconnected corrugated carbon-based network has an electrical conductivity that is greater than 17 S/cm.
- the interconnected corrugated carbon-based network forms when some wavelength of light hits the surface of the GO, and is then absorbed to practically immediately convert to heat, which liberates carbon dioxide (CO 2 ).
- Exemplary light sources include but are not limited to a 780 nm laser, a green laser, and a flash lamp. The light beam emission of the light sources may range from near infrared to ultraviolet wavelengths.
- the typical carbon content of the interconnected corrugated carbon-based network is greater than 97% with less than 3% oxygen remaining.
- FIG. 9 compares a powder X-ray diffraction (XRD) pattern of the corrugated carbon-based network with both graphite and graphite oxide diffraction patterns.
- XRD powder X-ray diffraction
- the increased d-spacing in GO is due to the oxygen containing functional groups in graphite oxide sheets, which tend to trap water molecules between the basal planes, causing the sheets to expand and separate.
- the XRD pattern of the corrugated carbon-based network shows the presence of both GO (10.76° 2 ⁇ ) and a broad graphitic peak at 25.97° 2 ⁇ associated with a d-spacing of 3.43 ⁇ , ( FIG. 10C ).
- the GO presence in the corrugated carbon-based network is expected since the laser has a desirable penetration depth, which results in the reduction of only the top portion of the film with the bottom layer being unaffected by the laser.
- CNTs carbon nanotubes
- the immobilization of carbon nanotubes (CNTs) on glassy carbon electrodes will result in a thin CNT film, which directly affects the voltammetric behavior of the CNT modified electrodes.
- the voltammetric current measured at the CNT modified electrode will likely have two types of contributions.
- the thin layer effect is a significant contributor to the voltammetric current.
- the thin layer effect stems from the oxidation of ferrocyanide ions, which are trapped between the nanotubes.
- the other contribution results from the semi-infinite diffusion of ferrocyanide towards the planar electrode surface.
- the mechanistic information is not easily de-convoluted and requires knowledge of the film thickness.
- FIG. 10 is a plot of log 10 of peak current versus log 10 of an applied voltammetric scan rate. In this case, no thin layer effect is observed since the plot has a consistent slope of 0.53 and is linear. The slope of 0.53 is relatively close to theoretical values calculated using a semi-infinite diffusion model governed by the Randles-Sevcik equation:
- FIGS. 11A-11E are graphs related to Raman spectroscopic analysis. As can be seen in FIG. 11A , characteristic D, G, 2D and S3 peaks are observed in both GO and the interconnected corrugated carbon-based network. The presence of the D band in both spectra suggests that carbon sp 3 centers still exist after reduction. Interestingly, the spectrum of the interconnected corrugated carbon-based network shows a slight increase in the D band peak at ⁇ 1350 cm ⁇ 1 . This unexpected increase is due to a larger presence of structural edge defects and indicates an overall increase in the amount of smaller graphite domains.
- the 2D Raman peak for the interconnected corrugated carbon-based network shifts from around about 2700 cm ⁇ 1 to around about 2600 cm ⁇ 1 after the interconnected corrugated carbon-based network is reduced from a carbon-based oxide.
- the combination of D-G generates an S3 second order peak, which appears at 2927 cm ⁇ 1 and, as expected, diminishes with decreasing disorder after infrared laser treatment.
- the plurality of expanded and interconnected carbon layers has a range of Raman spectroscopy S3 second order peak that ranges from around about 2920 cm ⁇ 1 to around about 2930 cm ⁇ 1 .
- the Raman analysis demonstrates the effectiveness of treating GO with an infrared laser as a means to effectively and controllably produce the interconnected corrugated carbon-based network.
- FIG. 11B illustrates the significant disparity between the C/O ratios before and after laser treatment of the GO films.
- typical GO films Prior to laser reduction, typical GO films have a C/O ratio of approximately 2.6:1, corresponding to a carbon/oxygen content of ⁇ 72% and 38%.
- the interconnected corrugated carbon-based network has an enhanced carbon content of 96.5% and a diminished oxygen content of 3.5%, giving an overall C/O ratio of 27.8:1. Since the laser reduction process takes place under ambient conditions, it is postulated that some of the oxygen present in the interconnected corrugated carbon-based network film is a result of the film having a static interaction with oxygen found in the environment.
- FIG. 11C shows that the C1s XPS spectrum of GO displays two broad peaks, which can be resolved into three different carbon components corresponding to the functional groups typically found on the GO surface, in addition to a small ⁇ to ⁇ * peak at 290.4 eV.
- These functional groups include carboxyl, sp 3 carbons in the form of epoxide and hydroxyl, and sp 2 carbons, which are associated with the following binding energies: approximately 288.1, 286.8 and 284.6 eV, respectively.
- FIG. 11D shows expected results, in that the large degree of oxidation in GO results in various oxygen components in the GO C1s XPS spectrum. These results are in contrast to the interconnected corrugated carbon-based network, which shows a significant decrease in oxygen containing functional groups and an overall increase in the C—C sp 2 carbon peak. This points to an efficient deoxygenating process as well as the re-establishment of C ⁇ C bonds in the interconnected corrugated carbon-based network. These results are consistent with the Raman analysis.
- an infrared laser such as LWL 34 ( FIG.
- the appearance of the delocalized IF peak is a clear indication that conjugation in the GO film is restored during the laser reduction process and adds support that an sp 2 carbon network has been re-established.
- the decreased intensity of the oxygen containing functional groups, the dominating C ⁇ C bond peak and the presence of the delocalized ⁇ conjugation all indicate that a low energy infrared laser is an effective tool in the generation of the interconnected corrugated carbon-based network.
- FIG. 11E depicts UV-visible light absorbance spectra of GO shown in black.
- the inset shows a magnified view of the boxed area showing the absorbance of GO with respect to a 780 nm infrared laser in the 650 to 850 nm region.
- FIG. 12A shows a set of interdigitated electrodes with dimensions of 6 mm ⁇ 6 mm, spaced at ⁇ 500 ⁇ m, that are directly patterned onto a thin film of GO.
- the GO film Prior to being patterned, the GO film was deposited on a thin flexible substrate, polyethylene terephthalate (PET), in order to fabricate a set of electrodes that are mechanically flexible.
- PET polyethylene terephthalate
- the top arrow points to the region of the interconnected corrugated carbon-based network that makes up the black interdigitated electrodes, while the bottom arrow points to the un-reduced golden colored GO film.
- the need for post-processing such as transferring the film to a new substrate is unnecessary.
- a peel and stick method could be used to selectively lift-off the black interdigitated electrodes made of interconnected corrugated carbon-based networks with e.g. polydimethysiloxane (PDMS) and transfer it onto other types of substrates ( FIG. 12B ).
- PDMS polydimethysiloxane
- FIG. 12B The simplicity of this method allows substantial control over pattern dimensions, substrate selectivity and electrical properties of the interconnected corrugated carbon-based network by controlling the laser intensity and thereby the amount of reduction in each film.
- FIG. 13 shows the sensor response for a patterned flexible set of interdigitated electrodes made of interconnected corrugated carbon-based networks that are exposed to 20 ppm of NO 2 in dry air.
- This sensor was fabricated by patterning interconnected corrugated carbon-based networks to fabricate the active electrode and marginally reducing the area in between the electrodes to have a consistent sheet resistance of ⁇ 7775 ohms/sq. In this way, it is possible to bypass the use of metal electrodes and directly pattern both the electrode and the sensing material on the flexible substrate simultaneously.
- the plot relates NO 2 gas exposure to R/R 0 , where R 0 is the sheet resistance at the initial state and NO 2 is the resistance of the interconnected corrugated carbon-based networks film after exposure to the gas.
- the film was exposed to NO 2 gas for 10 min followed immediately by purging with air for another 10 min. This process was then repeated nine more times for a total of 200 min.
- the un-optimized sensor made up of interconnected corrugated carbon-based networks still shows good, reversible sensing for NO 2 and its easy fabrication makes it quite advantageous for these systems.
- the sensor made up of interconnected corrugated carbon-based networks for NO 2 holds promise for improving the fabrication of all-organic flexible sensor devices, at low cost by using inexpensive starting materials directly patterned with an inexpensive laser.
- interconnected corrugated carbon-based networks make interconnected corrugated carbon-based networks a viable candidate for use as a heterogeneous catalyst support for metal nanoparticles.
- the direct growth of Pt nanoparticles on interconnected corrugated carbon-based networks could aid in the improvement of methanol based fuel cells, which have shown enhanced device performance from large surface area and conducting carbon-based scaffolds.
- This disclosure demonstrates that an interconnected corrugated carbon-based network is a viable scaffold for the controllable growth of Pt nanoparticles.
- FIGS. 14A-14D shows scanning electron microscopy images illustrating the growth of Pt nanoparticles with respect to electrodeposition times corresponding to 0, 15, 60 and 120 seconds. As expected, there are no Pt particles present at 0 seconds of electrodeposition ( FIG. 14A ), but small Pt nanoparticles are clearly visible after just 15 seconds ( FIG. 14B ) with nanoparticle sizes ranging from 10-50 nm ( FIG. 14B , inset).
- Carbon electrodes have attracted tremendous interest for various electrochemical applications because of their wide potential window and good electrocatalytic activity for many redox reactions. Given its high surface area and flexibility and the fact that it is an all-carbon electrode, interconnected corrugated carbon-based networks could revolutionize electrochemical systems by making miniaturized and fully flexible devices. Here, understanding the electrochemical properties of interconnected corrugated carbon-based networks is highly beneficial to determining its potential for electrochemical applications. Recently, graphene's electrocatalytic properties have been demonstrated to stem, in large part, from the efficient electron transfer at its edges rather than its basal planes. In fact, it has been reported that graphene exhibits in certain systems electrocatalytic activity similar to that of edge plane highly ordered pyrolytic graphite.
- an interconnected corrugated carbon-based network In addition to having a highly expanded network, an interconnected corrugated carbon-based network also displays a large amount of edge planes (Refer back to FIG. 5 ), making it an ideal system for studying the role of edge planes on the electrochemistry of graphene-based nanomaterials.
- FIG. 15 compares the CV profiles of GO, graphite and electrodes made of interconnected corrugated carbon-based networks in an equimolar mixture of 5 mM K 3 [Fe(CN) 6 ]/K 4 [Fe(CN) 6 ] dissolved in 1.0 M KCl solution at a scan rate of 50 mV/s.
- the electrode made of interconnected corrugated carbon-based networks approaches the behavior of a perfectly reversible system with a low ⁇ E p (peak-to-peak potential separation) of 59.5 mV at a scan rate of 10 mV/s to 97.6 mV at a scan rate 400 mV/s.
- the low ⁇ E p values approaches the calculated theoretical value of 59 mV.
- ⁇ E p is directly related to the electron transfer rate constant (k 0 obs )
- the low experimental value of ⁇ E p indicates a very fast electron transfer rate.
- the calculated k 0 obs values vary from 1.266 ⁇ 10 ⁇ 4 cm s ⁇ 1 for graphite and, as expected, increases for an interconnected corrugated carbon-based network to 1.333 ⁇ 10 ⁇ 2 cm s ⁇ 1 .
- the redox system that was used for the evaluation of the electron transfer kinetics was 5 mM K 3 [Fe(CN) 6 ]/K 4 [Fe(CN) 6 ] (1:1 molar ratio) dissolved in 1.0 M KCl solution.
- the electrodes were first cycled for at least 5 scans before collecting the experimental data.
- the heterogeneous electron transfer rate constant (k 0 obs ) was determined using a method developed by Nicholson, which relates the peak separation ( ⁇ E p ) to a dimensionless kinetic parameter ⁇ , and consequently to k 0 obs according to the following equation:
- D O and D R are the diffusion coefficients of the oxidized and reduced species, respectively.
- the other variables include ⁇ —the applied scan rate, n—the number of electrons transferred in the reaction, F—the Faraday constant, R—the gas constant, T—the absolute temperature and ⁇ —the transfer coefficient.
- the diffusion coefficients of the oxidized and reduced species are typically similar; therefore, the term (D R /D O ⁇ /2 is ⁇ 1.
- a diffusion coefficient (D O ) of 7.26 ⁇ 10 ⁇ 6 cm 2 s ⁇ 1 was used for [[Fe(CN) 6 ] 3-/4- in 1.0 M KCl.
- the electrodes made of interconnected corrugated carbon-based networks are fabricated on flexible PET substrates covered with GO which, when laser reduced, serves as both the electrode and the current collector, thus making this particular electrode not only lightweight and flexible, but also inexpensive.
- the low oxygen content in interconnected corrugated carbon-based networks ( ⁇ 3.5%) as shown through XPS analysis is quite advantageous to the electrochemical activity seen here, since a higher oxygen content at the edge plane sites have been shown to limit and slow down the electron transfer of the ferri-/ferrocyanide redox couple.
- embodiments of the present disclosure provides methodologies for making highly electroactive electrodes for potential applications in vapor sensing, biosensing, electrocatalysis and energy storage.
- the present disclosure relates to a facile, solid-state and environmentally safe method for generating, patterning, and electronic tuning of graphite-based materials at a low cost.
- Interconnected corrugated carbon-based networks are shown to be successfully produced and selectively patterned from the direct laser irradiation of GO films under ambient conditions. Circuits and complex designs are directly patterned on various flexible substrates without masks, templates, post-processing, transferring techniques, or metal catalysts.
- the electrical properties of interconnected corrugated carbon-based networks are precisely tuned over five orders of magnitude, a feature that has proven difficult with other methods.
- This new mode of generating interconnected corrugated carbon-based networks provides a new venue for manufacturing all organic based devices such as gas sensors, and other electronics.
- the relatively inexpensive method for generating interconnected corrugated carbon-based networks on thin flexible organic substrates makes it a relatively ideal heterogeneous scaffold for the selective growth of metal nanoparticles.
- the selective growth of metal nanoparticles has the potential in electrocatalysing methanol fuel cells.
- films made of interconnected corrugated carbon-based networks show exceptional electrochemical activity that surpasses other carbon-based electrodes in the electron charge transfer of ferro-/ferricyanide redox couple.
- the simultaneous reduction and patterning of GO through the use of an inexpensive laser is a new technique, which offers significant versatility for the fabrication of electronic devices, all organic devices, asymmetric films, microfluidic devices, integrated dielectric layers, batteries, gas sensor, and electronic circuitry.
- this process uses a low-cost infrared laser in an unmodified, commercially available CD/DVD optical disc drive with LightScribe technology to pattern complex images on GO and has the additional benefit to simultaneously produce the laser converted corrugated carbon network.
- a LightScribe technology laser is typically operated with a 780 nm wavelength at a power output within a range of around 5 mW to around 350 mW.
- the carbon-based oxide absorbs within the spectrum of the laser's emission, the process is achievable at any wavelength at a given power output.
- This method is a simple, single step, low cost, and maskless solid-state approach to generating interconnected corrugated carbon-based networks that can be carried out without the necessity of any post-processing treatment on a variety of thin films. Unlike other reduction methods for generating graphite-based materials, this method is a non-chemical route and a relatively simple and environmentally safe process, which is not limited by chemical reducing agents.
- the technique described herein is inexpensive, does not require bulky equipment, displays direct control over film conductivity and image patterning, can be used as a single step for fabricating flexible electronic devices, all without the necessity for sophisticated alignment or producing expensive masks. Also, due to the conductive nature of the materials used, it is possible to control the resulting conductivity by simply patterning at different laser intensities and power, a property that has yet to been shown by other methods. Working circuit boards, electrodes, capacitors, and/or conducting wires are precisely patterned via a computerized program. The technique allows control over a variety of parameters, and therefore provides a venue for simplifying device fabrication and has the potential to be scaled, unlike other techniques that are limited by cost or equipment. This method is applicable to any photothermically active material, which includes but is not limited to GO, conducting polymers, and other photothermically active compounds such as carbon nanotubes.
- An interconnected corrugated carbon-based network is also shown to be an effective scaffold for the successful growth and size control of Pt nanoparticles via a simple electrochemical process.
- a flexible electrode made of interconnected corrugated carbon-based networks was fabricated, which displays a textbook-like reversibility with an impressive increase of ⁇ 238% in electrochemical activity when compared to graphite towards the electron transfer between the ferri-/ferrocyanide redox couple.
- This proof-of concept process has the potential to effectively improve applications that would benefit from the high electrochemical activity demonstrated here including batteries, sensors and electrocatalysis.
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Abstract
An interconnected corrugated carbon-based network comprising a plurality of expanded and interconnected carbon layers is disclosed. In one embodiment, each of the expanded and interconnected carbon layers is made up of at least one corrugated carbon sheet that is one atom thick. In another embodiment, each of the expanded and interconnected carbon layers is made up of a plurality of corrugated carbon sheets that are each one atom thick. The interconnected corrugated carbon-based network is characterized by a high surface area with highly tunable electrical conductivity and electrochemical properties.
Description
- This application claims the benefit of U.S. provisional patent application No. 61/578,431, filed Dec. 21, 2011, the disclosure of which is incorporated herein by reference in its entirety.
- This invention was made with Government support under Grant No. HR0011-10-3-0002, awarded by the United States Department of Defense, Defense Advanced Research Projects Agency. The Government has certain rights in this invention.
- The present disclosure provides an interconnected corrugated carbon-based network and an inexpensive process for making, patterning, and tuning the electrical, physical and electrochemical properties of the interconnected corrugated carbon-based network.
- In the pursuit of producing high quality bulk carbon-based devices such as organic sensors, a variety of syntheses now incorporate graphite oxide (GO) as a precursor for the generation of large scale carbon-based materials. Inexpensive methods for producing large quantities of GO from the oxidation of graphitic powders are now available. In addition, the water dispersibility of GO combined with inexpensive production methods make GO an ideal starting material for producing carbon-based devices. In particular, GO has water dispersible properties. Unfortunately, the same oxygen species that give GO its water dispersible properties also create defects in its electronic structure, and as a result, GO is an electrically insulating material. Therefore, the development of device grade carbon-based films with superior electronic properties requires the removal of these oxygen species, re-establishment of a conjugated carbon network, as well as a method for controllably patterning carbon-based device features.
- Methods for reducing graphite oxide have included chemical reduction via hydrazine, hydrazine derivatives, or other reducing agents, high temperature annealing under chemical reducing gases and/or inert atmospheres, solvothermal reduction, a combination of chemical and thermal reduction methods, flash reduction, and most recently, laser reduction of GO. Although several of these methods have demonstrated relatively high quality graphite oxide reduction, many have been limited by expensive equipment, high annealing temperatures and nitrogen impurities in the final product. As a result, of these difficulties, a combination of properties that includes high surface area and high electrical conductivity in an expanded interconnected carbon network has remained elusive. In addition, large scale film patterning via an all encompassing step for both GO reduction and patterning has proven difficult and has typically been dependent on photo-masks to provide the most basic of patterns. Therefore, what is needed is an inexpensive process for making and patterning an interconnected corrugated carbon-based network having a high surface area with highly tunable electrical conductivity and electrochemical properties.
- The present disclosure provides a method of producing an interconnected corrugated carbon-based network. The interconnected corrugated carbon-based network produced has a combination of properties that includes high surface area and high electrical conductivity in an expanded network of interconnected carbon layers.
- In one embodiment, the method produces a patterned interconnected corrugated carbon-based network. In that particular embodiment, an initial step receives a substrate having a carbon-based oxide film. Once the substrate is received, a next step involves generating a light beam having a power density sufficient to reduce portions of the carbon-based oxide film to an interconnected corrugated carbon-based network. Another step involves directing the light beam across the carbon-based oxide film in a predetermined pattern via a computerized control system while adjusting the power density of the light beam via the computerized control system according to predetermined power density data associated with the predetermined pattern.
- In one embodiment, the substrate is a disc-shaped, digital versatile disc (DVD) sized thin plastic sheet removably adhered to a DVD sized plate that includes a DVD centering hole. The DVD sized plate carrying the disc-shaped substrate is loadable into a direct-to-disc labeling enabled optical disc drive. A software program executed by the computerized control system reads data that defines the predetermined pattern. The computerized control system directs a laser beam generated by the optical disc drive onto the disc-shaped substrate, thereby reducing portions of the carbon-based oxide film to an electrically conductive interconnected corrugated carbon-based network that matches shapes, dimensions, and conductance levels dictated by the data of the predetermined pattern.
- Those skilled in the art will appreciate the scope of the disclosure and realize additional aspects thereof after reading the following detailed description in association with the accompanying drawings.
- The accompanying drawings incorporated in and forming a part of this specification illustrate several aspects of the disclosure, and together with the description serve to explain the principles of the disclosure.
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FIG. 1 depicts the label side of a prior art direct-to-disc labeling type CD/DVD disc. -
FIG. 2 is a schematic of a prior art direct-to-disc labeling type optical disc drive. -
FIG. 3 is a process diagram for an exemplary process for providing graphite oxide (GO) films on a substrate. -
FIG. 4 is a process diagram for laser scribing an interconnected corrugated carbon-based network and then fabricating electrical components from the interconnected corrugated carbon-based network. -
FIG. 5 is a line drawing of a sample of the interconnected corrugated carbon-based network of the present embodiments. -
FIG. 6A is an artwork image of a man's head covered with circuits. -
FIG. 6B is a photograph of a GO film after the artwork image ofFIG. 6A is directly patterned on the GO film using the laser scribing technique of the present disclosure. -
FIG. 7 is a graph that provides a comparison between changes in electrical conductivity by reducing the GO film ofFIG. 6B by using various grayscale levels to laser scribe the artwork ofFIG. 6A to produce the patterned GO film ofFIG. 6B . -
FIG. 8A is a scanning electron microscope (SEM) image that illustrates an infrared laser's effect on GO film prior to laser treatment on the right side of the image in contrast to an aligned, interconnected corrugated carbon-based network on the left side of the image. -
FIG. 8B is an SEM image showing that an interconnected corrugated carbon-based network has a thickness that is approximately 10 times larger in comparison to that of untreated GO film. -
FIG. 8C is an SEM image showing a cross-sectional view of a single laser converted interconnected corrugated carbon-based network. -
FIG. 8D is an SEM image showing a greater magnification of a selected area within the interconnected corrugated carbon-based network inFIG. 8C . -
FIG. 9 compares a powder X-ray diffraction (XRD) pattern of the interconnected corrugated carbon-based network with both graphite and graphite oxide diffraction patterns. -
FIG. 10 is a plot of log10 of peak current versus log10 of an applied voltammetric scan rate. -
FIGS. 11A-11E are graphs related to Raman spectroscopy analysis. -
FIG. 12A is a structural diagram showing a set of interdigitated electrodes made of interconnected corrugated carbon-based networks with dimensions of 6 mm×6 mm, spaced at ˜500 μm, that are directly patterned onto a thin film of GO. -
FIG. 12B is a structural diagram showing the set of interdigitated electrodes transferred onto another type of substrate. -
FIG. 13 shows the sensor response for a patterned flexible set of interdigitated electrodes that are made of interconnected corrugated carbon-based networks that are exposed to 20 ppm of nitrous oxide (NO2) in dry air. -
FIGS. 14A-14D shows SEM images illustrating the growth of platinum (Pt) nanoparticles onto a scaffold made of an interconnected corrugated carbon-based network with respect to electrodeposition times corresponding to 0, 15, 60 and 120 seconds. -
FIG. 15 compares the CV profiles of GO, graphite and electrodes made of interconnected corrugated carbon-based networks in an equimolar mixture of 5 mM K3[Fe(CN)6]/K4[Fe(CN)6] dissolved in 1.0 M KCl solution at a scan rate of 50 mV/s. - The embodiments set forth below represent the necessary information to enable those skilled in the art to practice the disclosure and illustrate the best mode of practicing the disclosure. Upon reading the following description in light of the accompanying drawings, those skilled in the art will understand the concepts of the disclosure and will recognize applications of these concepts not particularly addressed herein. It should be understood that these concepts and applications fall within the scope of the disclosure and the accompanying claims.
- The present disclosure provides an inexpensive process for making and patterning an interconnected corrugated carbon-based network having stringent requirements for a high surface area with highly tunable electrical conductivity and electrochemical properties. The embodiments described herein not only meet these stringent requirements, but provide direct control over the conductivity and patterning of interconnected corrugated carbon-based networks while creating flexible electronic devices in a single step process. Moreover, the production of these interconnected corrugated carbon-based networks does not require reducing agents, or expensive equipment. The simple direct fabrication of interconnected corrugated carbon-based networks on flexible substrates therefore simplifies the development of lightweight electronic devices. The interconnected corrugated carbon-based networks can be synthesized on various substrates, such as plastic, metal, and glass. Herein an all-organic NO2 gas sensor, a fast redox active electrode, and a scaffold for the direct growth of platinum (Pt) nanoparticles are demonstrated.
- In at least one embodiment, the interconnected corrugated carbon-based networks are conducting films produced using a common and inexpensive infrared laser that fits inside a compact disc/digital versatile disc (CD/DVD) optical drive unit that provides a direct-to-disc label writing function. LightScribe (Registered Trademark of Hewlett Packard Corporation) and Label Flash (Registered Trademark of Yamaha Corporation) are exemplary direct-to-disc labeling technologies that pattern text and graphics onto the surface of a CD/DVD disc. LightScribe DVD drives are commercially available for around $20 and the LightScribing process is controlled using a standard desktop computer.
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FIG. 1 depicts the label side of a standard direct-to-disc labeling type CD/DVD disc 10 that includes alabel area 12 and aclamping area 14 that surrounds a centeringhole 16. Adye film 18 covers thelabel area 12 and is sensitive to laser energy that is typically directed onto thelabel area 12 to produce a permanent visible image that may comprisegraphics 20 andtext 22. Aposition tracking indicia 24 is usable by an optical disc drive (not shown) to accurately locate an absolute angular position of the CD/DVD disc 10 within the optical disc drive so that thegraphics 20 and/ortext 22 can be re-written to provide increased contrast. Moreover, theposition tracking indicia 24 is usable by the optical disc drive to allow additional graphics and/or text to be written without undesirably overwriting thegraphics 20 and/ortext 22. -
FIG. 2 is a schematic of a prior art direct-to-disc labeling type optical disc drive system 26. In this exemplary case, the CD/DVD disc 10 is depicted in cross-section and loaded onto aspindle assembly 28 that is driven by a CD/DVD spindle motor 30. Thelabel area 12 is shown facing alaser assembly 32 that includes a label writer laser (LWL) 34, alens 36, and afocus actuator 38. TheLWL 34 is typically a laser diode. Exemplary specifications for theLWL 34 includes a maximum pulse optical power of 350 mW at 780 nm emission and a maximum pulse output power of 300 mW at 660 nm emission. Alaser beam 40 emitted by theLWL 34 is focused by thelens 36 that is alternately translated towards and away from theLWL 34 by thefocus actuator 38 in order to maintain focus of thelaser beam 40 onto thelabel area 12 of the CD/DVD disc 10. Thelaser beam 40 is typically focused to a diameter that ranges from around 0.7 μm to around 1 μm. - The
laser assembly 32 is responsive to acontrol system 42 that provides control signals 44 through an optical drive interface (ODI) 46. Thecontrol system 42 further includes a central processor unit (CPU) 48 and amemory 50. Label image data (LID) having information needed to realize a permanent image to be written onto thelabel area 12 of the CD/DVD disc 10 is processed by theCPU 48, which in turn provides anLID stream signal 52 that pulses theLWL 34 on and off to heat thedye film 18 to realize the image defined by the LID. - The
CPU 48 also processes the LID through theODI 46 to provide aposition control signal 54 to aradial actuator 56 that translates thelaser assembly 32 in relation to thelabel area 12 in response to position information contained in the LID. In some versions of the present embodiments, the optical disc drive system 26 monitors the focus of thelaser beam 40 with an optical receiver (not shown), so that theODI 46 can generate afocus control signal 58 for thefocus actuator 38. TheODI 46 also provides amotor control signal 60 for the CD/DVD spindle motor 30 that maintains an appropriate rotation speed of the CD/DVD disc 10 while a label writing process is ongoing. - In some versions of the optical disc drive system 26 the
LWL 34 is used exclusively for label writing directly to thelabel area 12 of the CD/DVD disc 10 and a separate laser diode (not shown) is used to write and/or read data to/from adata side 62 of the CD/DVD disc 10. In other versions of the optical disc drive system 26, theLWL 34 is used for label writing and data reading and/or writing. When theLWL 34 is used for data reading and/or writing, the CD/DVD disc 10 is flipped over to expose thedata side 62 of the CD/DVD disc 10 to thelaser beam 40. In versions wherein theLWL 34 is also used as a data read/write laser, thelaser assembly 32 includes optical pick-up components (not shown) such as a beam splitter and at least one optical receiver. The output power of theLWL 34 is typically around 3 mW during data read operations. - In order to use the optical disc drive system 26 to realize an inexpensive process for making and patterning an interconnected corrugated carbon-based network having a high surface area with highly tunable electrical conductivity and electrochemical properties, a carbon-based film is substituted for the dye film 18 (
FIG. 1 ). In one embodiment, graphite oxide (GO) is synthesized from high purity graphite powder using a modified Hummer's method. Dispersions of GO in water (3.7 mg/mL) are then used to make GO films on various substrates. Exemplary substrates include but are not limited to polyethylene terephthalate (PET), nitrocellulose membrane (with 0.4 μm pore size), aluminum foil, carbonized aluminum, copper foil, and regular copier paper. - Referring to
FIG. 3 , aprocess 100 begins with providinggraphite powder 64. Thegraphite powder 64 undergoes an oxidation reaction using the modified Hummer's method to become GO 66 (step 102). However, it is to be understood that other oxidation methods for producing GO are available and such methods are within the scope of the present disclosure. An exfoliation procedure produces exfoliated GO 68 (step 104). The exfoliation procedure may be accomplished via ultrasonication. It is to be understood that the exfoliatedGO 68 results from a partial exfoliation and not a complete exfoliation to a single layer of GO. The partial exfoliation is used to create a high accessible surface area that enables a fast redox response which enables a fast sensor response. Additionally, the partial exfoliation ofGO 68 provides the high surface area for growing metal nanoparticles that could then be used in catalysis. Asubstrate 70 carries aGO film 72 that is produced by a deposition procedure that deposits the exfoliatedGO 68 onto the substrate 70 (step 106). In at least some embodiments, aGO film 72 is made by either drop-casting or vacuum filtering GO dispersions onto thesubstrate 70 that is the size of a CD/DVD disc. TheGO film 72 is typically allowed to dry for 24 hours under ambient conditions. However, controlling conditions to expose theGO film 72 to a relatively lower humidity and relatively higher temperature will dry theGO film 72 relatively quickly. The term GO herein refers to graphite oxide. - Referring to
FIG. 4 , individual ones of the GO film(s) 72 are then affixed to asubstrate carrier 74, which has dimensions similar to the CD/DVD disc 10 (FIG. 1)(step 108). Thesubstrate carrier 74 carrying thesubstrate 70 with theGO film 72 is loaded into the optical disc drive system 26 (FIG. 2 ) such that theGO film 72 faces theLWL 34 for laser treatment (step 110). In this way, the present embodiments use theGO film 72 in place of the dye film 18 (FIG. 1 ). It is to be understood that thesubstrate carrier 74 can be a rigid or semi-rigid disc onto which theGO film 72 can be fabricated directly. In that case, thesubstrate carrier 74 replaces the function of thesubstrate 70. -
Images 76 for realizingelectrical components 78 are patterned in concentric circles, moving outward from the center of the substrate carrier 74 (step 112). The laser irradiation process results in the removal of oxygen species and the reestablishment of sp2 carbons. This causes a change in the conductivity of theGO film 72 with a typical resistance of >20 MO/sq to become a relatively highly conducting plurality of expanded and interconnected carbon layers that make up an interconnected corrugated carbon-basednetwork 80. The number of times theGO film 72 is laser treated results in a significant and controllable change in the conductivity of the interconnected corrugated carbon-basednetwork 80. The interconnected corrugated carbon-basednetwork 80 has a combination of properties that include high surface area and high electrical conductivity in an expanded interconnected network of carbon layers. In one embodiment the plurality of expanded and interconnected carbon layers has a surface area of greater than 1400 m2/g. In another embodiment, the plurality of expanded and interconnected carbon layers has a surface area of greater than 1500 m2/g. In yet another embodiment, the surface area is around about 1520 m2/g. In one embodiment, the plurality of expanded and interconnected carbon layers yields an electrical conductivity that is greater than about 1500 S/m. In another embodiment, the plurality of expanded and interconnected carbon layers yields an electrical conductivity that is greater than about 1600 S/m. In yet another embodiment, the plurality of expanded and interconnected carbon layers yields an electrical conductivity of around about 1650 S/m. In still another embodiment, the plurality of expanded and interconnected carbon layers yields an electrical conductivity that is greater than about 1700 S/m. In yet one more embodiment, the plurality of expanded and interconnected carbon layers yields an electrical conductivity of around about 1738 S/m. Moreover, in one embodiment, the plurality of expanded and interconnected carbon layers yields an electrical conductivity that is greater than about 1700 S/m and a surface area that is greater than about 1500 m2/g. In another embodiment, the plurality of expanded and interconnected carbon layers yields an electrical conductivity of around about 1650 S/m and a surface area of around about 1520 m2/g. - The
electrical components 78 comprisingelectrodes 82 used in the fabrication of adevice 84 are laser irradiated 6 times before reaching the relatively high conductivity of around about 1738 S/m. The laser irradiation process takes about 20 minutes per cycle. Afterwards, thesubstrate 70 carrying the interconnected corrugated carbon-basednetwork 80 and any remainingGO film 72 is removed from the substrate carrier 74 (step 114). Next, the interconnected corrugated carbon-basednetwork 80 is fabricated into theelectrical components 78 that make up the device 84 (step 116). In this exemplary case, portions of the interconnected corrugated carbon-basednetwork 80 on thesubstrate 70 are cut into rectangular sections to make theelectrical components 78, which include theelectrodes 82 formed from the interconnected corrugated carbon-basednetwork 80. - The interconnected corrugated carbon-based
network 80 possesses a very low oxygen content of only 3.5%. In other embodiments, the oxygen content of the expanded and interconnected carbon layers ranges from around about 1% to around about 5%.FIG. 5 is a line drawing of a sample of the interconnected corrugated carbon-basednetwork 80, which is made up of the plurality of expanded and interconnected carbon layers that include corrugated carbon layers such as a singlecorrugated carbon sheet 86. In one embodiment, each of the expanded and interconnected carbon layers comprises at least one corrugated carbon sheet that is one atom thick. In another embodiment, each of the expanded and interconnected carbon layers comprises a plurality of corrugated carbon sheets that are each one atom thick. The thickness of the interconnected corrugated carbon-basednetwork 80, as measured from cross-sectional scanning electron microscopy (SEM) and profilometry, was found to be around about 7.6 μm. In one embodiment, a range of thickness of the plurality of expanded and interconnected carbon layers making up the interconnected corrugated carbon-basednetwork 80 is from around 7 μm to 8 μm. - As an illustration of the diversity in image patterning that is possible, a complex image formed by the direct laser reduction of GO is shown in
FIGS. 6A and 6B .FIG. 6A is an artwork image of a man's head covered with circuits.FIG. 6B is a photograph of a GO film after the artwork image ofFIG. 6A is directly patterned on the GO film using the laser scribing technique of the present disclosure. Essentially, any part of the GO film that comes in direct contact with the 780 nm infrared laser is effectively reduced to an interconnected corrugated carbon-based network, with the amount of reduction being controlled by the laser intensity; a factor that is determined by power density of the laser beam impinging on the GO film. The resulting image ofFIG. 6B is an effective print of the original image ofFIG. 6A . However, in this case the image ofFIG. 6B is made up of various reductions of the GO film. As expected, the darkest black areas indicate exposure to the strongest laser intensities, while the lighter gray areas are only partially reduced. Since different grayscale levels directly correlate with the laser's intensity, it is possible to tune the electrical properties of the generated interconnected corrugated carbon-based network over five to seven orders of magnitude in sheet resistance (Ω/sq) by simply changing the grayscale level used during the patterning process. As illustrated inFIG. 7 , there is a clear relationship between sheet resistance, grayscale level and the number of times the GO film is laser irradiated. Control over conductivity from a completely insulating GO film, with a typical sheet resistance value of >20 MΩ/sq, to a conducting interconnected corrugated carbon-based network that registers a sheet resistance value of approximately 80 Ω/sq, which translates to a conductivity of ˜1650 S/m, is possible. This method is sensitive enough to differentiate between similar grayscale levels as shown in the graph ofFIG. 7 , where the sheet resistance varies significantly with only a small variation in grayscale level. In addition, the number of times a GO film is laser treated results in a significant and controllable change in sheet resistance. Each additional laser treatment lowers the sheet resistance as seen inFIG. 7 , where a film is laser irradiated once (black squares), twice (circles) and three times (triangles) with respect to the grayscale level. Therefore, the film's sheet resistance is tunable both by controlling the grayscale level used and the number of times the film is reduced by the laser, a property that has so far been difficult to control through other methods. - Scanning electron microscope (SEM) techniques are usable to understand the effects a low energy infrared laser has on the structural properties of GO film by comparing the morphological differences between an interconnected corrugated carbon-based network and untreated graphite oxide GO film.
FIG. 8A is an SEM image that illustrates the infrared laser's effect on GO film prior to laser treatment on the right side of the image in contrast to an aligned, interconnected corrugated carbon-based network on the left side of the image that occurs after being reduced with the infrared laser. The image not only gives a clear definition between the interconnected corrugated carbon-based network and untreated GO regions, but also demonstrates the level of precision possible when using this method as a means to pattern and reduce GO. The regions of interconnected corrugated carbon-based network, which result from the laser treatment, can be further analyzed through cross-sectional SEM. -
FIG. 8B is an SEM image showing a cross-sectional view of a free standing film of laser treated and untreated GO film, which shows a significant difference between GO film thicknesses. As indicated by the white brackets inFIG. 8B , an interconnected corrugated carbon-based network increases in thickness by approximately 10 times in comparison to that of untreated GO film. Moreover, a range of thickness of the plurality of expanded and interconnected carbon layers is from around 7 μm to around 8 μm. In one embodiment, an average thickness of the plurality of expanded and interconnected carbon layers is around 7.6 μm. The increased thickness stems from rapid degassing of gases generated and released during laser treatment, similar to thermal shock, which effectively causes the reduced GO to expand and exfoliate as these gases rapidly pass through the GO film.FIG. 8C is an SEM image showing a cross-sectional view of a single interconnected corrugated carbon-based network, which shows an expanded structure that is a characteristic of the interconnected corrugated carbon-based network of the present disclosure. -
FIG. 8D is an SEM image showing a greater magnification of a selected area within the corrugated carbon-based network inFIG. 8C . The SEM image ofFIG. 8D allows the thickness of the plurality of expanded and interconnected carbon layers to be calculated to be between 5-10 nm. However, the number of carbon layers in the plurality of expanded and interconnected carbon layers making up the interconnected corrugated carbon-based network is above 100. In another embodiment the number of carbon layers in the plurality of expanded and interconnected carbon layers is greater than 1000. In yet another embodiment the number of carbon layers in the plurality of expanded and interconnected carbon layers is greater than 10,000. In still another embodiment, the number of carbon layers in the plurality of expanded and interconnected carbon layers is greater than 100,000. The SEM analysis shows that although an infrared laser emission is only marginally absorbed by GO, enough power and focus (i.e., power density) can cause sufficient thermal energy to efficiently reduce, deoxygenate, expand, and exfoliate the GO film. Moreover, the surface area of the interconnected corrugated carbon-based network is greater than about 1500 m2/g. - Since each of the carbon layers have a theoretical surface area of 2630 m2/g, a surface greater than 1500 m2/g indicates that almost all surfaces of the carbon layers are accessible. The interconnected corrugated carbon-based network has an electrical conductivity that is greater than 17 S/cm. The interconnected corrugated carbon-based network forms when some wavelength of light hits the surface of the GO, and is then absorbed to practically immediately convert to heat, which liberates carbon dioxide (CO2). Exemplary light sources include but are not limited to a 780 nm laser, a green laser, and a flash lamp. The light beam emission of the light sources may range from near infrared to ultraviolet wavelengths. The typical carbon content of the interconnected corrugated carbon-based network is greater than 97% with less than 3% oxygen remaining. Some samples of the interconnected corrugated carbon-based network are greater than 99% carbon even though the laser reduction process is conducted in the air.
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FIG. 9 compares a powder X-ray diffraction (XRD) pattern of the corrugated carbon-based network with both graphite and graphite oxide diffraction patterns. A typical XRD pattern for graphite, shown inFIG. 9 trace A, displays the characteristic peak of 2θ=27.8° with a d-spacing of 3.20 Å. An XRD pattern (FIG. 9 , trace B) for GO, on the other hand, exhibits a single peak of 2θ=10.76°, which corresponds to an interlayer d-spacing of 8.22 Å. The increased d-spacing in GO is due to the oxygen containing functional groups in graphite oxide sheets, which tend to trap water molecules between the basal planes, causing the sheets to expand and separate. The XRD pattern of the corrugated carbon-based network (FIG. 9 , trace C) shows the presence of both GO (10.76° 2θ) and a broad graphitic peak at 25.97° 2θ associated with a d-spacing of 3.43 Å, (FIG. 10C ). The GO presence in the corrugated carbon-based network is expected since the laser has a desirable penetration depth, which results in the reduction of only the top portion of the film with the bottom layer being unaffected by the laser. The small presence of GO is more prominent in thicker films, but begins to diminish in thinner films. In addition, one can also observe a partially obstructed peak at 26.66° 2θ, which shows a similar intensity to the broad 25.97° 2θ peak. Both of these peaks are considered graphitic peaks, which are associated to two different lattice spacing between basal planes. - It has been previously shown that the immobilization of carbon nanotubes (CNTs) on glassy carbon electrodes will result in a thin CNT film, which directly affects the voltammetric behavior of the CNT modified electrodes. In a ferro/ferrocyanide redox couple, the voltammetric current measured at the CNT modified electrode will likely have two types of contributions. The thin layer effect is a significant contributor to the voltammetric current. The thin layer effect stems from the oxidation of ferrocyanide ions, which are trapped between the nanotubes. The other contribution results from the semi-infinite diffusion of ferrocyanide towards the planar electrode surface. Unfortunately, the mechanistic information is not easily de-convoluted and requires knowledge of the film thickness.
- In contrast, no thin layer effect is observed in association with the interconnected corrugated carbon-based network of the present disclosure.
FIG. 10 is a plot of log10 of peak current versus log10 of an applied voltammetric scan rate. In this case, no thin layer effect is observed since the plot has a consistent slope of 0.53 and is linear. The slope of 0.53 is relatively close to theoretical values calculated using a semi-infinite diffusion model governed by the Randles-Sevcik equation: -
- Raman spectroscopy is used to characterize and compare the structural changes induced by laser treating GO film.
FIGS. 11A-11E are graphs related to Raman spectroscopic analysis. As can be seen inFIG. 11A , characteristic D, G, 2D and S3 peaks are observed in both GO and the interconnected corrugated carbon-based network. The presence of the D band in both spectra suggests that carbon sp3 centers still exist after reduction. Interestingly, the spectrum of the interconnected corrugated carbon-based network shows a slight increase in the D band peak at ˜1350 cm−1. This unexpected increase is due to a larger presence of structural edge defects and indicates an overall increase in the amount of smaller graphite domains. The result is consistent with SEM analysis, where the generation of exfoliated accordion-like graphitic regions (FIG. 5 ) caused by the laser treatment creates a large number of edges. However the D band also shows a significant overall peak narrowing, suggesting a decrease in the types of defects in the interconnected corrugated carbon-based network. The G band experiences a narrowing and a decrease in peak intensity as well as a peak shift from 1585 to 1579 cm−1. These results are consistent with the re-establishment of sp2 carbons and a decrease in structural defects within the basal planes. The overall changes in the G band indicate a transition from an amorphous carbon state to a more crystalline carbon state. In addition, a prominent and shifted 2D peak from around about 2730 to around about 2688 cm−1 is seen after GO is treated with the infrared laser, indicating a considerable reduction of the GO film and strongly points to the presence of a few-layer interconnected graphite structure. In one embodiment, the 2D Raman peak for the interconnected corrugated carbon-based network shifts from around about 2700 cm−1 to around about 2600 cm−1 after the interconnected corrugated carbon-based network is reduced from a carbon-based oxide. Moreover, as a result of lattice disorder, the combination of D-G generates an S3 second order peak, which appears at 2927 cm−1 and, as expected, diminishes with decreasing disorder after infrared laser treatment. In some embodiments, the plurality of expanded and interconnected carbon layers has a range of Raman spectroscopy S3 second order peak that ranges from around about 2920 cm−1 to around about 2930 cm−1. The Raman analysis demonstrates the effectiveness of treating GO with an infrared laser as a means to effectively and controllably produce the interconnected corrugated carbon-based network. - X-ray photoelectron spectroscopy (XPS) was employed to correlate the effects of laser irradiation on the oxygen functionalities and to monitor the structural changes on the GO film. Comparing the carbon to oxygen (C/O) ratios between GO and the interconnected corrugated carbon-based network provides an effective measurement of the extent of reduction achieved using a simple low energy infrared laser.
FIG. 11B illustrates the significant disparity between the C/O ratios before and after laser treatment of the GO films. Prior to laser reduction, typical GO films have a C/O ratio of approximately 2.6:1, corresponding to a carbon/oxygen content of ˜72% and 38%. On the other hand, the interconnected corrugated carbon-based network has an enhanced carbon content of 96.5% and a diminished oxygen content of 3.5%, giving an overall C/O ratio of 27.8:1. Since the laser reduction process takes place under ambient conditions, it is postulated that some of the oxygen present in the interconnected corrugated carbon-based network film is a result of the film having a static interaction with oxygen found in the environment. -
FIG. 11C shows that the C1s XPS spectrum of GO displays two broad peaks, which can be resolved into three different carbon components corresponding to the functional groups typically found on the GO surface, in addition to a small π to π* peak at 290.4 eV. These functional groups include carboxyl, sp3 carbons in the form of epoxide and hydroxyl, and sp2 carbons, which are associated with the following binding energies: approximately 288.1, 286.8 and 284.6 eV, respectively. -
FIG. 11D shows expected results, in that the large degree of oxidation in GO results in various oxygen components in the GO C1s XPS spectrum. These results are in contrast to the interconnected corrugated carbon-based network, which shows a significant decrease in oxygen containing functional groups and an overall increase in the C—C sp2 carbon peak. This points to an efficient deoxygenating process as well as the re-establishment of C═C bonds in the interconnected corrugated carbon-based network. These results are consistent with the Raman analysis. Thus, an infrared laser such as LWL 34 (FIG. 2 ) is powerful enough to remove a majority of the oxygen functional groups, as is evident in the XPS spectrum of the interconnected corrugated carbon-based network, which only shows a small disorder peak and a peak at 287.6 eV. The latter corresponds to the presence of sp3 type carbons suggesting that a small amount of carboxyl groups remain in the final product. In addition, the presence of a π to π* satellite peak at ˜290.7 eV indicates that delocalized π conjugation is significantly stronger in the interconnected corrugated carbon-based network as this peak is miniscule in the GO XPS spectrum. The appearance of the delocalized IF peak is a clear indication that conjugation in the GO film is restored during the laser reduction process and adds support that an sp2 carbon network has been re-established. The decreased intensity of the oxygen containing functional groups, the dominating C═C bond peak and the presence of the delocalized π conjugation all indicate that a low energy infrared laser is an effective tool in the generation of the interconnected corrugated carbon-based network. -
FIG. 11E depicts UV-visible light absorbance spectra of GO shown in black. The inset shows a magnified view of the boxed area showing the absorbance of GO with respect to a 780 nm infrared laser in the 650 to 850 nm region. - The future development of multifunctional flexible electronics such as roll-up displays, photovoltaic cells, and even wearable devices presents new challenges for designing and fabricating lightweight, flexible energy storage devices.
- Embodiments of the present disclosure also include other types of electrical and electronic devices. For example,
FIG. 12A shows a set of interdigitated electrodes with dimensions of 6 mm×6 mm, spaced at ˜500 μm, that are directly patterned onto a thin film of GO. Prior to being patterned, the GO film was deposited on a thin flexible substrate, polyethylene terephthalate (PET), in order to fabricate a set of electrodes that are mechanically flexible. The top arrow points to the region of the interconnected corrugated carbon-based network that makes up the black interdigitated electrodes, while the bottom arrow points to the un-reduced golden colored GO film. Since the electrodes are directly patterned onto the GO film on a flexible substrate, the need for post-processing such as transferring the film to a new substrate is unnecessary. Although, if desired, a peel and stick method could be used to selectively lift-off the black interdigitated electrodes made of interconnected corrugated carbon-based networks with e.g. polydimethysiloxane (PDMS) and transfer it onto other types of substrates (FIG. 12B ). The simplicity of this method allows substantial control over pattern dimensions, substrate selectivity and electrical properties of the interconnected corrugated carbon-based network by controlling the laser intensity and thereby the amount of reduction in each film. - These interdigitated electrodes can, in turn, be used as an all-organic flexible gas sensor for the detection of NO2.
FIG. 13 shows the sensor response for a patterned flexible set of interdigitated electrodes made of interconnected corrugated carbon-based networks that are exposed to 20 ppm of NO2 in dry air. This sensor was fabricated by patterning interconnected corrugated carbon-based networks to fabricate the active electrode and marginally reducing the area in between the electrodes to have a consistent sheet resistance of ˜7775 ohms/sq. In this way, it is possible to bypass the use of metal electrodes and directly pattern both the electrode and the sensing material on the flexible substrate simultaneously. The plot relates NO2 gas exposure to R/R0, where R0 is the sheet resistance at the initial state and NO2 is the resistance of the interconnected corrugated carbon-based networks film after exposure to the gas. The film was exposed to NO2 gas for 10 min followed immediately by purging with air for another 10 min. This process was then repeated nine more times for a total of 200 min. Even with a slightly lower sensitivity than more sophisticated and optimized sensors, the un-optimized sensor made up of interconnected corrugated carbon-based networks still shows good, reversible sensing for NO2 and its easy fabrication makes it quite advantageous for these systems. The sensor made up of interconnected corrugated carbon-based networks for NO2 holds promise for improving the fabrication of all-organic flexible sensor devices, at low cost by using inexpensive starting materials directly patterned with an inexpensive laser. - The high conductivity and increased surface area resulting from the plurality of expanded and interconnected carbon layers, makes interconnected corrugated carbon-based networks a viable candidate for use as a heterogeneous catalyst support for metal nanoparticles. In particular, the direct growth of Pt nanoparticles on interconnected corrugated carbon-based networks could aid in the improvement of methanol based fuel cells, which have shown enhanced device performance from large surface area and conducting carbon-based scaffolds. This disclosure demonstrates that an interconnected corrugated carbon-based network is a viable scaffold for the controllable growth of Pt nanoparticles. By electrochemically reducing 1 mM of K2PtCl4 with 0.5 M H2SO4 at −0.25 V for different periods of time, it is possible to actively control the Pt particle size that is electrodeposited on the interconnected corrugated carbon-based network film.
FIGS. 14A-14D shows scanning electron microscopy images illustrating the growth of Pt nanoparticles with respect to electrodeposition times corresponding to 0, 15, 60 and 120 seconds. As expected, there are no Pt particles present at 0 seconds of electrodeposition (FIG. 14A ), but small Pt nanoparticles are clearly visible after just 15 seconds (FIG. 14B ) with nanoparticle sizes ranging from 10-50 nm (FIG. 14B , inset). After 60 seconds of electrodeposition, larger Pt nanoparticles grow with particle sizes averaging 100 to 150 nm (FIG. 14C ). Finally, after 120 seconds, 200 to 300 nm particles are found evenly distributed across the surface of the interconnected corrugated carbon-based networks (FIG. 14D ). The active growth of Pt nanoparticles at controllable diameters on interconnected corrugated carbon-based networks could make a potentially useful hybrid material for applications that require metal nanoparticles, such as methanol fuel cells and gas phase catalysts. Moreover, if palladium (Pd) is deposited a sensor made of an interconnected corrugated carbon-based network could be used for sensors that detect hydrogen or for catalysis such as Suzuki coupling or Heck coupling. - Carbon electrodes have attracted tremendous interest for various electrochemical applications because of their wide potential window and good electrocatalytic activity for many redox reactions. Given its high surface area and flexibility and the fact that it is an all-carbon electrode, interconnected corrugated carbon-based networks could revolutionize electrochemical systems by making miniaturized and fully flexible devices. Here, understanding the electrochemical properties of interconnected corrugated carbon-based networks is highly beneficial to determining its potential for electrochemical applications. Recently, graphene's electrocatalytic properties have been demonstrated to stem, in large part, from the efficient electron transfer at its edges rather than its basal planes. In fact, it has been reported that graphene exhibits in certain systems electrocatalytic activity similar to that of edge plane highly ordered pyrolytic graphite. In addition to having a highly expanded network, an interconnected corrugated carbon-based network also displays a large amount of edge planes (Refer back to
FIG. 5 ), making it an ideal system for studying the role of edge planes on the electrochemistry of graphene-based nanomaterials. - In this regard, the electrochemical behavior associated with the electron transfer of flexible electrodes made of interconnected corrugated carbon-based networks using a [Fe(CN)6]3-/4- couple as a redox probe is characterized. For example,
FIG. 15 compares the CV profiles of GO, graphite and electrodes made of interconnected corrugated carbon-based networks in an equimolar mixture of 5 mM K3[Fe(CN)6]/K4[Fe(CN)6] dissolved in 1.0 M KCl solution at a scan rate of 50 mV/s. Unlike GO and graphite, the electrode made of interconnected corrugated carbon-based networks approaches the behavior of a perfectly reversible system with a low ΔEp (peak-to-peak potential separation) of 59.5 mV at a scan rate of 10 mV/s to 97.6 mV at ascan rate 400 mV/s. The low ΔEp values approaches the calculated theoretical value of 59 mV. Given that ΔEp is directly related to the electron transfer rate constant (k0 obs), the low experimental value of ΔEp indicates a very fast electron transfer rate. The calculated k0 obs values vary from 1.266×10−4 cm s−1 for graphite and, as expected, increases for an interconnected corrugated carbon-based network to 1.333×10−2 cm s−1. - The redox system that was used for the evaluation of the electron transfer kinetics was 5 mM K3[Fe(CN)6]/K4[Fe(CN)6] (1:1 molar ratio) dissolved in 1.0 M KCl solution. To ensure a stable electrochemical response, the electrodes were first cycled for at least 5 scans before collecting the experimental data. The heterogeneous electron transfer rate constant (k0 obs) was determined using a method developed by Nicholson, which relates the peak separation (ΔEp) to a dimensionless kinetic parameter ψ, and consequently to k0 obs according to the following equation:
-
- where DO and DR are the diffusion coefficients of the oxidized and reduced species, respectively. The other variables include ν—the applied scan rate, n—the number of electrons transferred in the reaction, F—the Faraday constant, R—the gas constant, T—the absolute temperature and α—the transfer coefficient. The diffusion coefficients of the oxidized and reduced species are typically similar; therefore, the term (DR/DO α/2 is ˜1. A diffusion coefficient (DO) of 7.26×10−6 cm2 s−1 was used for [[Fe(CN)6]3-/4- in 1.0 M KCl.
- In addition to the relatively large increase in the electron transfer rate at the electrode made of interconnected corrugated carbon-based networks (˜two orders of magnitude times faster than a graphite electrode), there is also substantial electrochemical activity for the electrode made of interconnected corrugated carbon-based networks as seen by an increase of ˜268% in the voltammetric peak current. These drastic improvements are attributed to the expanded architecture of interconnected corrugated carbon-based network films, which provide large open areas for the effective diffusion of the electroactive species and allow a better interfacial interaction with the interconnected corrugated carbon-based network surface. Additionally, it is surmised that the amount of edge-like surface per unit mass is thus, much higher than graphite, and therefore contributes to the higher electron transfer rates, as seen here. Given the large number of exposed edge sites in interconnected corrugated carbon-based networks, it is not surprising to find that it not only has a higher k0 obs value than graphite, but surpasses that of carbon nanotube based electrodes and that of stacked graphene nanofibers.
- Note that the electrodes made of interconnected corrugated carbon-based networks are fabricated on flexible PET substrates covered with GO which, when laser reduced, serves as both the electrode and the current collector, thus making this particular electrode not only lightweight and flexible, but also inexpensive. In addition, the low oxygen content in interconnected corrugated carbon-based networks (˜3.5%) as shown through XPS analysis is quite advantageous to the electrochemical activity seen here, since a higher oxygen content at the edge plane sites have been shown to limit and slow down the electron transfer of the ferri-/ferrocyanide redox couple. As such, embodiments of the present disclosure provides methodologies for making highly electroactive electrodes for potential applications in vapor sensing, biosensing, electrocatalysis and energy storage.
- The present disclosure relates to a facile, solid-state and environmentally safe method for generating, patterning, and electronic tuning of graphite-based materials at a low cost. Interconnected corrugated carbon-based networks are shown to be successfully produced and selectively patterned from the direct laser irradiation of GO films under ambient conditions. Circuits and complex designs are directly patterned on various flexible substrates without masks, templates, post-processing, transferring techniques, or metal catalysts. In addition, by varying the laser intensity and laser irradiation treatments the electrical properties of interconnected corrugated carbon-based networks are precisely tuned over five orders of magnitude, a feature that has proven difficult with other methods. This new mode of generating interconnected corrugated carbon-based networks provides a new venue for manufacturing all organic based devices such as gas sensors, and other electronics. The relatively inexpensive method for generating interconnected corrugated carbon-based networks on thin flexible organic substrates makes it a relatively ideal heterogeneous scaffold for the selective growth of metal nanoparticles. Moreover, the selective growth of metal nanoparticles has the potential in electrocatalysing methanol fuel cells. Further still, films made of interconnected corrugated carbon-based networks show exceptional electrochemical activity that surpasses other carbon-based electrodes in the electron charge transfer of ferro-/ferricyanide redox couple. The simultaneous reduction and patterning of GO through the use of an inexpensive laser is a new technique, which offers significant versatility for the fabrication of electronic devices, all organic devices, asymmetric films, microfluidic devices, integrated dielectric layers, batteries, gas sensor, and electronic circuitry.
- In contrast to other lithography techniques, this process uses a low-cost infrared laser in an unmodified, commercially available CD/DVD optical disc drive with LightScribe technology to pattern complex images on GO and has the additional benefit to simultaneously produce the laser converted corrugated carbon network. A LightScribe technology laser is typically operated with a 780 nm wavelength at a power output within a range of around 5 mW to around 350 mW. However, it is to be under stood that as long as the carbon-based oxide absorbs within the spectrum of the laser's emission, the process is achievable at any wavelength at a given power output. This method is a simple, single step, low cost, and maskless solid-state approach to generating interconnected corrugated carbon-based networks that can be carried out without the necessity of any post-processing treatment on a variety of thin films. Unlike other reduction methods for generating graphite-based materials, this method is a non-chemical route and a relatively simple and environmentally safe process, which is not limited by chemical reducing agents.
- The technique described herein is inexpensive, does not require bulky equipment, displays direct control over film conductivity and image patterning, can be used as a single step for fabricating flexible electronic devices, all without the necessity for sophisticated alignment or producing expensive masks. Also, due to the conductive nature of the materials used, it is possible to control the resulting conductivity by simply patterning at different laser intensities and power, a property that has yet to been shown by other methods. Working circuit boards, electrodes, capacitors, and/or conducting wires are precisely patterned via a computerized program. The technique allows control over a variety of parameters, and therefore provides a venue for simplifying device fabrication and has the potential to be scaled, unlike other techniques that are limited by cost or equipment. This method is applicable to any photothermically active material, which includes but is not limited to GO, conducting polymers, and other photothermically active compounds such as carbon nanotubes.
- As described above, a method has been presented for producing graphite-based materials that is not only facile, inexpensive and versatile, but is a one step environmentally safe process for reducing and patterning graphite films in the solid state. A simple low energy, inexpensive infrared laser is used as a powerful tool for the effective reduction, subsequent expansion and exfoliation and fine patterning of GO. Aside from the ability to directly pattern and effectively produce large areas of highly reduced laser converted graphite films, this method is applicable to a variety of other thin substrates and has the potential to simplify the manufacturing process of devices made entirely from organic materials. A flexible all organic gas sensor has been fabricated directly by laser patterning of GO deposited on thin flexible PET. An interconnected corrugated carbon-based network is also shown to be an effective scaffold for the successful growth and size control of Pt nanoparticles via a simple electrochemical process. Finally, a flexible electrode made of interconnected corrugated carbon-based networks was fabricated, which displays a textbook-like reversibility with an impressive increase of ˜238% in electrochemical activity when compared to graphite towards the electron transfer between the ferri-/ferrocyanide redox couple. This proof-of concept process has the potential to effectively improve applications that would benefit from the high electrochemical activity demonstrated here including batteries, sensors and electrocatalysis.
- Those skilled in the art will recognize improvements and modifications to the embodiments of the present disclosure. All such improvements and modifications are considered within the scope of the concepts disclosed herein and the claims that follow.
Claims (77)
1. An interconnected corrugated carbon-based network comprising a plurality of expanded and interconnected carbon layers.
2. The interconnected corrugated carbon-based network of claim 1 wherein each of the expanded and interconnected carbon layers comprises at least one corrugated carbon sheet that is one atom thick.
3. The interconnected corrugated carbon-based network of claim 1 wherein each of the expanded and interconnected carbon layers comprises a plurality of corrugated carbon sheet that are each one atom thick.
4. The interconnected corrugated carbon-based network of claim 1 wherein the plurality of expanded and interconnected carbon layers yields an electrical conductivity that is greater than about 1500 S/m.
5. The interconnected corrugated carbon-based network of claim 1 wherein the plurality of expanded and interconnected carbon layers yields an electrical conductivity that is greater than about 1600 S/m.
6. The interconnected corrugated carbon-based network of claim 1 wherein the plurality of expanded and interconnected carbon layers yields an electrical conductivity of around about 1650 S/m.
7. The interconnected corrugated carbon-based network of claim 1 wherein the plurality of expanded and interconnected carbon layers yields an electrical conductivity that is greater than about 1700 S/m.
8. The interconnected corrugated carbon-based network of claim 1 wherein the plurality of expanded and interconnected carbon layers yields an electrical conductivity of around about 1738 S/m.
9. The interconnected corrugated carbon-based network of claim 1 wherein the plurality of expanded and interconnected carbon layers has a surface area that is greater than around about 1000 square meters per gram (m2/g).
10. The interconnected corrugated carbon-based network of claim 1 wherein the plurality of expanded and interconnected carbon layers has a surface area that is greater than around about 1500 m2/g.
11. The interconnected corrugated carbon-based network of claim 1 wherein the plurality of expanded and interconnected carbon layers has a surface area of around about 1520 m2/g.
12. The interconnected corrugated carbon-based network of claim 1 wherein the plurality of expanded and interconnected carbon layers yields an electrical conductivity that is greater than about 1700 S/m and a surface area that is about 1500 m2/g.
13. The interconnected corrugated carbon-based network of claim 1 wherein the plurality of expanded and interconnected carbon layers yields an electrical conductivity of around about 1650 S/m and a surface area of around about 1520 m2/g.
14. The interconnected corrugated carbon-based network of claim 1 wherein a second order disordered (2D) Raman peak for the interconnected corrugated carbon-based network shifts from around about 2730 cm−1 to around about 2688 cm−1 after the interconnected corrugated carbon-based network is reduced from a carbon-based oxide.
15. The interconnected corrugated carbon-based network of claim 1 wherein a 2D Raman peak for the interconnected corrugated carbon-based network shifts from around about 2700 cm−1 to around about 2600 cm−1 after the interconnected corrugated carbon-based network is reduced from a carbon-based oxide.
16. The interconnected corrugated carbon-based network of claim 1 wherein an average thickness of the plurality of expanded and interconnected carbon layers is around 7.6 μm.
17. The interconnected corrugated carbon-based network of claim 1 wherein a range of thickness of the plurality of expanded and interconnected carbon layers is from around about 7 μm to around about 8 μm.
18. The interconnected corrugated carbon-based network of claim 1 wherein an oxygen content of the expanded and interconnected carbon layers is around about 3.5%.
19. The interconnected corrugated carbon-based network of claim 1 wherein an oxygen content of the expanded and interconnected carbon layers ranges from around about 1% to around about 5%.
20. The interconnected corrugated carbon-based network of claim 1 wherein the plurality of expanded and interconnected carbon layers has a carbon to oxygen (C/O) ratio of approximately 27.8:1.
21. The interconnected corrugated carbon-based network of claim 1 wherein the plurality of expanded and interconnected carbon layers has a C/O ratio that ranges from around about 100:1 to 25:1.
22. The interconnected corrugated carbon-based network of claim 1 wherein the plurality of expanded and interconnected carbon layers has a sheet resistance that is tunable within a range of around about 20 megaohms per square to around about 80 ohms per square.
23. The interconnected corrugated carbon-based network of claim 1 wherein the plurality of expanded and interconnected carbon layers has a Raman spectroscopy S3 second order peak at about 2927 cm−1.
24. The interconnected corrugated carbon-based network of claim 1 wherein the plurality of expanded and interconnected carbon layers has a range of Raman spectroscopy S3 second order peak that ranges from around about 2920 cm−1 to around about 2930 cm−1.
25. The interconnected corrugated carbon-based network of claim 1 wherein a number of carbon layers in the plurality of expanded and interconnected carbon layers is greater than about 100.
26. The interconnected corrugated carbon-based network of claim 1 wherein a number of carbon layers in the plurality of expanded and interconnected carbon layers is greater than about 1000.
27. The interconnected corrugated carbon-based network of claim 1 wherein a number of carbon layers in the plurality of expanded and interconnected carbon layers is greater than about 10,000.
28. The interconnected corrugated carbon-based network of claim 1 wherein a number of carbon layers in the plurality of expanded and interconnected carbon layers is greater than about 100,000.
29. A method of producing a patterned interconnected corrugated carbon-based network comprising:
receiving a substrate having a carbon-based oxide film;
generating a light beam having a power density sufficient to reduce portions of the carbon-based oxide film to a plurality of expanded and interconnected carbon layers that are electrically conductive; and
directing the light beam across the carbon-based oxide film in a predetermined pattern via a computerized control system.
30. The method of claim 29 further including adjusting the power density of the light beam to tune electrical conductivity of the plurality of expanded and interconnected carbon layers produced when the carbon-based oxide film is exposed to the light beam.
31. The method of claim 29 wherein the plurality of expanded and interconnected carbon layers has a sheet resistance that is tunable within a range of around 20 megaohms per square to around 80 ohms per square.
32. The method of claim 29 wherein the carbon-based oxide film is a graphite oxide film.
33. The method of claim 32 wherein the graphite oxide film has a C/O ratio of approximately 2.6:1.
34. The method of claim 32 wherein portions of the graphite oxide film exposed to the light beam have a C/O ratio of approximately 27.8:1.
35. The method of claim 29 wherein the plurality of expanded and interconnected carbon layers have a C/O ratio that ranges from around 100:1 to 25:1.
36. The method of claim 29 wherein the light beam is a laser beam.
37. The method of claim 36 wherein the laser beam is an infrared laser beam having a wave-length of around 780 nm.
38. The method of claim 29 wherein light beam emission ranges from near infrared to ultraviolet wavelengths.
39. The method of claim 29 wherein the light beam has a power of around about 5 mW.
40. The method of claim 29 wherein the light beam has a power range from around about 5 mW to around about 350 mW.
41. The method of claim 29 further including loading the substrate into an automated laser patterning system before generating the light beam having the power density sufficient to reduce portions of the carbon-based oxide film to the interconnected corrugated carbon-based network.
42. The method of claim 29 wherein exposing the carbon-based oxide film to the light beam to form the predetermined pattern of interconnected corrugated carbon-based networks within the carbon-based oxide film is repeated over predetermined portions of the predetermined pattern to increase a graphite to carbon-based oxide ratio.
43. The method of claim 29 further including an initial step of drop-casting a carbon-based oxide solution onto the substrate.
44. The method of claim 29 wherein the substrate is polyethylene terephthalate (PET).
45. The method of claim 29 further including exposing the substrate with oxygen plasma for around about three minutes.
46. The method of claim 29 wherein the plurality of expanded and interconnected carbon layers has a surface area of around about 1520 square meters per gram (m2/g).
47. The method of claim 29 wherein each of the expanded and interconnected carbon layers is a single corrugated carbon sheet that is only one atom thick.
48. The method of claim 29 wherein the plurality of expanded and interconnected carbon layers yields an electrical conductivity that is greater than around about 1500 S/m.
49. The method of claim 29 wherein the plurality of expanded and interconnected carbon layers yields an electrical conductivity that is greater than around about 1600 S/m.
50. The method of claim 29 wherein the plurality of expanded and interconnected carbon layers yields an electrical conductivity of around about 1650 S/m.
51. The method of claim 29 wherein the plurality of expanded and interconnected carbon layers yields an electrical conductivity that is greater than about 1700 S/m.
52. The method of claim 29 wherein the plurality of expanded and interconnected carbon layers yields an electrical conductivity of around about 1738 S/m.
53. The method of claim 29 wherein the plurality of expanded and interconnected carbon layers has a surface area that is greater than around about 1000 m2/g.
54. The method of claim 29 wherein the plurality of expanded and interconnected carbon layers has a surface area that is greater than around about 1500 m2/g.
55. The method of claim 29 wherein the plurality of expanded and interconnected carbon layers has a surface area of around about 1520 m2/g.
56. The method of claim 29 wherein the plurality of expanded and interconnected carbon layers yields an electrical conductivity that is greater than around about 1700 S/m and a surface area that is around about 1500 m2/g.
57. The method of claim 29 wherein the plurality of expanded and interconnected carbon layers yields an electrical conductivity of around about 1650 S/m and a surface area of around about 1520 m2/g.
58. The method of claim 29 wherein a second order disordered (2D) Raman peak for the interconnected corrugated carbon-based network shifts from around about 2730 cm−1 to around about 2688 cm−1 after the interconnected corrugated carbon-based network is reduced from a carbon-based oxide.
59. The method of claim 29 wherein a 2D Raman peak for the interconnected corrugated carbon-based network shifts from around about 2700 cm−1 to around about 2600 cm−1 after the interconnected corrugated carbon-based network is reduced from a carbon-based oxide.
60. The method of claim 29 wherein an average thickness of the plurality of expanded and interconnected carbon layers is around about 7.6 μm.
61. The method of claim 29 wherein a range of thickness of the plurality of expanded and interconnected carbon layers is from around about 7 μM to around about 8 μm.
62. The method of claim 29 wherein an oxygen content of the expanded and interconnected carbon layers is around about 3.5%.
63. The method of claim 29 wherein an oxygen content of the expanded and interconnected carbon layers ranges from around about 1% to around about 5%.
64. The method of claim 29 wherein the plurality of expanded and interconnected carbon layers have a C/O ratio of approximately 27.8:1.
65. The method of claim 29 wherein the plurality of expanded and interconnected carbon layers have a C/O ratio that ranges from around about 100:1 to 25:1.
66. The method of claim 29 wherein the plurality of expanded and interconnected carbon layers has a sheet resistance that is tunable within a range of around about 20 megaohms per square to around about 80 ohms per square.
67. The method of claim 29 wherein the plurality of expanded and interconnected carbon layers has a Raman spectroscopy S3 second order peak at around about 2927 cm−1.
68. The method of claim 29 wherein the plurality of expanded and interconnected carbon layers has a range of Raman spectroscopy S3 second order peak that ranges from around about 2920 cm−1 to around about 2930 cm−1.
69. The method of claim 29 wherein a number of carbon layers in the plurality of expanded and interconnected carbon layers is greater than around about 100.
70. The method of claim 29 wherein a number of carbon layers in the plurality of expanded and interconnected carbon layers is greater than around about 1000.
71. The method of claim 29 wherein a number of carbon layers in the plurality of expanded and interconnected carbon layers is greater than around about 10,000.
72. The method of claim 29 wherein a number of carbon layers in the plurality of expanded and interconnected carbon layers is greater than around about 100,000.
73. The method of claim 29 wherein the predetermined pattern defines conductive traces of an all-organic gas sensor.
74. The method of claim 73 wherein the all-organic gas sensor is a physically flexible nitrous oxide (NO2) sensor.
75. The method of claim 29 wherein the predetermined pattern defines a fast redox active electrode.
76. The method of claim 29 wherein the predetermined pattern defines a scaffold for direct growth of nanoparticles.
77. The method of claim 76 wherein the nanoparticles are platinum (Pt) nanoparticles.
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Publication number | Priority date | Publication date | Assignee | Title |
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US9782739B2 (en) | 2016-02-26 | 2017-10-10 | Nanotech Energy, Inc. | Methods, devices and systems for processing of carbonaceous compositions |
US10211495B2 (en) | 2014-06-16 | 2019-02-19 | The Regents Of The University Of California | Hybrid electrochemical cell |
US10614968B2 (en) | 2016-01-22 | 2020-04-07 | The Regents Of The University Of California | High-voltage devices |
US10622163B2 (en) | 2016-04-01 | 2020-04-14 | The Regents Of The University Of California | Direct growth of polyaniline nanotubes on carbon cloth for flexible and high-performance supercapacitors |
US10648958B2 (en) | 2011-12-21 | 2020-05-12 | The Regents Of The University Of California | Interconnected corrugated carbon-based network |
US10655020B2 (en) | 2015-12-22 | 2020-05-19 | The Regents Of The University Of California | Cellular graphene films |
US10734167B2 (en) | 2014-11-18 | 2020-08-04 | The Regents Of The University Of California | Porous interconnected corrugated carbon-based network (ICCN) composite |
US20200384731A1 (en) * | 2018-01-22 | 2020-12-10 | Neograf Solutions, Llc | A graphite article and method of making same |
US10876210B1 (en) * | 2016-05-05 | 2020-12-29 | Iowa State University Research Foundation, Inc. | Tunable nano-structured inkjet printed graphene via UV pulsed-laser irradiation for electrochemical sensing |
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US10938032B1 (en) | 2019-09-27 | 2021-03-02 | The Regents Of The University Of California | Composite graphene energy storage methods, devices, and systems |
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US11133134B2 (en) | 2017-07-14 | 2021-09-28 | The Regents Of The University Of California | Simple route to highly conductive porous graphene from carbon nanodots for supercapacitor applications |
Families Citing this family (4)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
GB201405614D0 (en) * | 2014-03-28 | 2014-05-14 | Perpetuus Res & Dev Ltd | Particles |
KR101615827B1 (en) * | 2014-12-30 | 2016-04-27 | 한양대학교 산학협력단 | Reduced graphene oxide/graphene composite film, Energy Storage Device Having the Same, and Method for Fabricating the composite film |
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Citations (8)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US20100221508A1 (en) * | 2009-02-27 | 2010-09-02 | Northwestern University | Methods of flash reduction and patterning of graphite oxide and its polymer composites |
US20100266964A1 (en) * | 2009-04-16 | 2010-10-21 | S Scott Gilje | Graphene oxide deoxygenation |
US20110143101A1 (en) * | 2009-12-11 | 2011-06-16 | Adarsh Sandhu | Graphene structure, method for producing the same, electronic device element and electronic device |
WO2011072213A2 (en) * | 2009-12-10 | 2011-06-16 | Virginia Commonwealth University | Production of graphene and nanoparticle catalysts supported on graphene using laser radiation |
US20120145234A1 (en) * | 2010-10-10 | 2012-06-14 | The Trustees Of Princeton University | Graphene electrodes for solar cells |
US20130048949A1 (en) * | 2011-05-19 | 2013-02-28 | Yu Xia | Carbonaceous Nanomaterial-Based Thin-Film Transistors |
US20130056703A1 (en) * | 2011-09-06 | 2013-03-07 | Infineon Technologies Ag | Sensor Device and Method |
US20130056346A1 (en) * | 2011-09-06 | 2013-03-07 | Indian Institute Of Technology Madras | Production of graphene using electromagnetic radiation |
Family Cites Families (284)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US2800616A (en) | 1954-04-14 | 1957-07-23 | Gen Electric | Low voltage electrolytic capacitor |
US3288641A (en) | 1962-06-07 | 1966-11-29 | Standard Oil Co | Electrical energy storage apparatus |
US3223639A (en) | 1962-07-10 | 1965-12-14 | Union Carbide Corp | Solion electrolyte |
US3536963A (en) | 1968-05-29 | 1970-10-27 | Standard Oil Co | Electrolytic capacitor having carbon paste electrodes |
US3652902A (en) | 1969-06-30 | 1972-03-28 | Ibm | Electrochemical double layer capacitor |
US3749608A (en) | 1969-11-24 | 1973-07-31 | Bogue J | Primary electrochemical energy cell |
US4327157A (en) | 1981-02-20 | 1982-04-27 | The United States Of America As Represented By The Secretary Of The Navy | Stabilized nickel-zinc battery |
JPS6110855A (en) | 1984-06-26 | 1986-01-18 | Asahi Glass Co Ltd | Electrode for cell and its manufacturing method |
US4645713A (en) | 1985-01-25 | 1987-02-24 | Agency Of Industrial Science & Technology | Method for forming conductive graphite film and film formed thereby |
JPH0754701B2 (en) | 1986-06-04 | 1995-06-07 | 松下電器産業株式会社 | Manufacturing method of alkaline storage battery |
US5143709A (en) | 1989-06-14 | 1992-09-01 | Temple University | Process for production of graphite flakes and films via low temperature pyrolysis |
JPH0817092B2 (en) | 1989-11-21 | 1996-02-21 | 株式会社リコー | Electrode substrate and method for producing the same |
CA2022802A1 (en) | 1989-12-05 | 1991-06-06 | Steven E. Koenck | Fast battery charging system and method |
CA2106066C (en) | 1991-09-13 | 1997-08-12 | Akira Yoshino | Secondary battery |
FR2685122B1 (en) | 1991-12-13 | 1994-03-25 | Alcatel Alsthom Cie Gle Electric | CONDUCTIVE POLYMER-BASED SUPERCAPACITOR. |
WO1996032618A1 (en) * | 1995-04-13 | 1996-10-17 | Alliedsignal Inc. | Carbon/carbon composite parallel plate heat exchanger and method of fabrication |
US5744258A (en) | 1996-12-23 | 1998-04-28 | Motorola,Inc. | High power, high energy, hybrid electrode and electrical energy storage device made therefrom |
US6117585A (en) | 1997-07-25 | 2000-09-12 | Motorola, Inc. | Hybrid energy storage device |
JP3503438B2 (en) | 1997-09-02 | 2004-03-08 | 株式会社デンソー | Lithium ion secondary battery and method of manufacturing secondary battery |
TW431004B (en) | 1998-10-29 | 2001-04-21 | Toshiba Corp | Nonaqueous electrolyte secondary battery |
US6252762B1 (en) | 1999-04-21 | 2001-06-26 | Telcordia Technologies, Inc. | Rechargeable hybrid battery/supercapacitor system |
US6677637B2 (en) | 1999-06-11 | 2004-01-13 | International Business Machines Corporation | Intralevel decoupling capacitor, method of manufacture and testing circuit of the same |
US7199997B1 (en) | 2000-06-09 | 2007-04-03 | U.S. Nanocorp, Inc. | Asymmetric electrochemical supercapacitor and method of manufacture thereof |
US8107223B2 (en) | 1999-06-11 | 2012-01-31 | U.S. Nanocorp, Inc. | Asymmetric electrochemical supercapacitor and method of manufacture thereof |
US7576971B2 (en) | 1999-06-11 | 2009-08-18 | U.S. Nanocorp, Inc. | Asymmetric electrochemical supercapacitor and method of manufacture thereof |
AU2709100A (en) | 1999-08-31 | 2001-03-26 | Vishay Intertechnology Inc. | Conductive polymer capacitor and method for making same |
US6790556B1 (en) | 1999-12-06 | 2004-09-14 | E.C.R. - Electro Chemical Research, Ltd. | Electrochemical energy storage device having improved enclosure arrangement |
US6522522B2 (en) | 2000-02-01 | 2003-02-18 | Cabot Corporation | Capacitors and supercapacitors containing modified carbon products |
WO2001057928A1 (en) | 2000-02-03 | 2001-08-09 | Case Western Reserve University | High power capacitors from thin layers of metal powder or metal sponge particles |
KR100515572B1 (en) | 2000-02-08 | 2005-09-20 | 주식회사 엘지화학 | Stacked electrochemical cell and method for preparing the same |
KR100515571B1 (en) | 2000-02-08 | 2005-09-20 | 주식회사 엘지화학 | Stacked electrochemical cell |
US6356433B1 (en) | 2000-03-03 | 2002-03-12 | The Regents Of The University Of California | Conducting polymer ultracapacitor |
JP4564125B2 (en) | 2000-03-24 | 2010-10-20 | パナソニック株式会社 | Method for producing electrode plate for non-aqueous electrolyte battery |
JP2002063894A (en) | 2000-08-22 | 2002-02-28 | Sharp Corp | Production method of carbon material film, and nonaqueous secondary battery using the carbon material film |
DE10044450C1 (en) | 2000-09-08 | 2002-01-17 | Epcos Ag | Formation of insulated condenser electrode structure, includes barrier component diffusing into layer between oxide dielectric and body of electrode metal |
JP3981566B2 (en) * | 2001-03-21 | 2007-09-26 | 守信 遠藤 | Method for producing expanded carbon fiber body |
JPWO2002093679A1 (en) | 2001-05-10 | 2004-09-02 | 日清紡績株式会社 | Non-aqueous electrolyte solution, composition for polymer gel electrolyte, polymer gel electrolyte, and secondary battery and electric double layer capacitor |
JP4197859B2 (en) | 2001-05-30 | 2008-12-17 | 株式会社Gsiクレオス | Lithium secondary battery electrode material and lithium secondary battery using the same |
DE10152270B4 (en) | 2001-10-20 | 2004-08-05 | Robert Bosch Gmbh | Circuit arrangement for discharging a buffer capacitor |
US6643119B2 (en) | 2001-11-02 | 2003-11-04 | Maxwell Technologies, Inc. | Electrochemical double layer capacitor having carbon powder electrodes |
TW535178B (en) | 2001-12-31 | 2003-06-01 | Luxon Energy Devices Corp | Cylindrical high-voltage super capacitor and its manufacturing method |
JP3714665B2 (en) | 2002-01-25 | 2005-11-09 | Necトーキン栃木株式会社 | Method for producing lithium ion secondary battery |
JP2004055541A (en) | 2002-05-31 | 2004-02-19 | Hitachi Maxell Ltd | Compound energy element |
JP2004039491A (en) | 2002-07-04 | 2004-02-05 | Japan Storage Battery Co Ltd | Nonaqueous electrolyte secondary battery |
JP2004063297A (en) | 2002-07-30 | 2004-02-26 | Yuasa Corp | Negative electrode for alkaline storage battery, method for producing the same, and alkaline storage battery using the same |
AU2003270626A1 (en) | 2002-09-16 | 2004-04-30 | The University Of Iowa Research Foundation | Magnetically modified electrodes as well as methods of making and using the same |
US7122760B2 (en) | 2002-11-25 | 2006-10-17 | Formfactor, Inc. | Using electric discharge machining to manufacture probes |
GB0229079D0 (en) | 2002-12-12 | 2003-01-15 | Univ Southampton | Electrochemical cell for use in portable electronic devices |
KR100583610B1 (en) | 2003-03-07 | 2006-05-26 | 재단법인서울대학교산학협력재단 | Transition metal oxide / carbon nanotube composite production method |
US7531267B2 (en) | 2003-06-02 | 2009-05-12 | Kh Chemicals Co., Ltd. | Process for preparing carbon nanotube electrode comprising sulfur or metal nanoparticles as a binder |
CA2536021A1 (en) | 2003-08-18 | 2005-03-03 | Powergenix Systems, Inc. | Method of manufacturing nickel zinc batteries |
US7248458B2 (en) | 2003-09-15 | 2007-07-24 | American Technical Ceramics Corporation | Orientation-insensitive ultra-wideband coupling capacitor and method of making |
CN100372035C (en) | 2003-10-17 | 2008-02-27 | 清华大学 | Polyaniline/Carbon Nanotube Hybrid Supercapacitor |
JP2005138204A (en) | 2003-11-05 | 2005-06-02 | Kaken:Kk | Ultrafine particle carrying carbon material, its manufacturing method, and carrying processor |
JP2005199267A (en) | 2003-12-15 | 2005-07-28 | Nippon Sheet Glass Co Ltd | Metal carrier and method for manufacturing the same |
US7255924B2 (en) | 2004-01-13 | 2007-08-14 | The United States Of America As Represented By The Secretary Of The Navy | Carbon nanoarchitectures with ultrathin, conformal polymer coatings for electrochemical capacitors |
JP2005317902A (en) | 2004-03-29 | 2005-11-10 | Kuraray Co Ltd | Electrolyte composition for electric double layer capacitor and electric double layer capacitor using the same |
JP2005294020A (en) | 2004-03-31 | 2005-10-20 | Sk Kaken Co Ltd | Solid electrolyte |
WO2005118688A1 (en) | 2004-06-01 | 2005-12-15 | Mcgill University | Method for fabricating intrinsically conducting polymer nanorods |
US8034222B2 (en) | 2004-10-26 | 2011-10-11 | The Regents Of The University Of California | Conducting polymer nanowire sensors |
JP2006147210A (en) | 2004-11-17 | 2006-06-08 | Hitachi Ltd | Secondary battery and manufacturing method thereof |
JP4967229B2 (en) | 2004-11-30 | 2012-07-04 | 株式会社Gsユアサ | A negative electrode plate for an alkaline secondary battery and an alkaline secondary battery to which the negative electrode plate is applied. |
JP2006252902A (en) | 2005-03-10 | 2006-09-21 | Kawasaki Heavy Ind Ltd | Hybrid battery |
JP4731967B2 (en) | 2005-03-31 | 2011-07-27 | 富士重工業株式会社 | Lithium ion capacitor |
US7858238B2 (en) | 2005-05-26 | 2010-12-28 | California Insitute Of Technology | High voltage and high specific capacity dual intercalating electrode Li-ion batteries |
US7859827B2 (en) | 2005-05-31 | 2010-12-28 | Corning Incorporated | Cellular honeycomb ultracapacitors and hybrid capacitors and methods for producing |
US20060275733A1 (en) | 2005-06-01 | 2006-12-07 | Cao Group, Inc. | Three-dimensional curing light |
DE602006021574D1 (en) | 2005-06-30 | 2011-06-09 | Koninkl Philips Electronics Nv | BATTERY AND METHOD FOR INSTALLING THIS ON A CLOTHING PIECE |
EP1947662A4 (en) | 2005-09-30 | 2018-03-14 | Mitsubishi Chemical Corporation | Electrolysis solution for electrolytic capacitor, and electrolytic capacitor |
JP2007160151A (en) | 2005-12-09 | 2007-06-28 | K & W Ltd | Reaction method, metal oxide nanoparticle or metal oxide nanoparticle-deposited carbon obtained thereby, electrode containing the carbon and electrochemical element using the electrode |
US8182943B2 (en) | 2005-12-19 | 2012-05-22 | Polyplus Battery Company | Composite solid electrolyte for protection of active metal anodes |
CA2637269C (en) * | 2006-02-01 | 2013-10-15 | Sgl Carbon Ag | Carbonized biopolymers from seaweed for capacitor electrodes |
CA2541232A1 (en) | 2006-03-29 | 2007-09-29 | Transfert Plus, S.E.C. | Redox couples, compositions and uses thereof |
US7990679B2 (en) | 2006-07-14 | 2011-08-02 | Dais Analytic Corporation | Nanoparticle ultracapacitor |
EP2050109B1 (en) | 2006-07-28 | 2017-06-28 | Illinois Tool Works Inc. | Double layer capacitor using polymer electrolyte in multilayer construction |
US7623340B1 (en) | 2006-08-07 | 2009-11-24 | Nanotek Instruments, Inc. | Nano-scaled graphene plate nanocomposites for supercapacitor electrodes |
JP4225334B2 (en) | 2006-08-25 | 2009-02-18 | トヨタ自動車株式会社 | Electrode for power storage device and power storage device |
GB0618033D0 (en) | 2006-09-13 | 2006-10-25 | Univ Nottingham | Electrochemical synthesis of composites |
US8385046B2 (en) | 2006-11-01 | 2013-02-26 | The Arizona Board Regents | Nano scale digitated capacitor |
AR064292A1 (en) | 2006-12-12 | 2009-03-25 | Commw Scient Ind Res Org | ENHANCED ENERGY STORAGE DEVICE |
CN101584065B (en) | 2007-01-12 | 2013-07-10 | 易诺维公司 | Three-dimensional batteries and methods of manufacturing the same |
RU2484565C2 (en) | 2007-02-16 | 2013-06-10 | ЮНИВЕРСАЛ СУПЕРКАПАСИТОРЗ ЭлЭлСи | Hybrid device for electric energy accumulation with electrochemical supercapacitor/ lead-acid battery |
CN101641810B (en) | 2007-03-28 | 2012-01-25 | 旭化成化学株式会社 | Electrode, lithium ion secondary battery using the same, electric double layer capacitor and fuel cell |
US20080241656A1 (en) | 2007-03-31 | 2008-10-02 | John Miller | Corrugated electrode core terminal interface apparatus and article of manufacture |
JP2008300467A (en) | 2007-05-30 | 2008-12-11 | Taiyo Yuden Co Ltd | Electrochemical device |
US8593714B2 (en) | 2008-05-19 | 2013-11-26 | Ajjer, Llc | Composite electrode and electrolytes comprising nanoparticles and resulting devices |
US7948739B2 (en) | 2007-08-27 | 2011-05-24 | Nanotek Instruments, Inc. | Graphite-carbon composite electrode for supercapacitors |
US8497225B2 (en) | 2007-08-27 | 2013-07-30 | Nanotek Instruments, Inc. | Method of producing graphite-carbon composite electrodes for supercapacitors |
US7875219B2 (en) | 2007-10-04 | 2011-01-25 | Nanotek Instruments, Inc. | Process for producing nano-scaled graphene platelet nanocomposite electrodes for supercapacitors |
US7745047B2 (en) | 2007-11-05 | 2010-06-29 | Nanotek Instruments, Inc. | Nano graphene platelet-base composite anode compositions for lithium ion batteries |
JP4934607B2 (en) | 2008-02-06 | 2012-05-16 | 富士重工業株式会社 | Power storage device |
WO2009120872A2 (en) | 2008-03-26 | 2009-10-01 | Ada Technologies, Inc. | High performance batteries with carbon nanomaterials and ionic liquids |
JP2009283658A (en) | 2008-05-22 | 2009-12-03 | Elpida Memory Inc | Insulating film for capacitor element, capacitor element, and semiconductor device |
US8450014B2 (en) * | 2008-07-28 | 2013-05-28 | Battelle Memorial Institute | Lithium ion batteries with titania/graphene anodes |
EP2685536A1 (en) | 2008-08-15 | 2014-01-15 | Massachusetts Institute of Technology | Layer-by-layer assemblies of carbon-based nanostructures and their applications in energy storage and generation devices |
WO2010019648A2 (en) | 2008-08-15 | 2010-02-18 | The Regents Of The University Of California | Hierarchical nanowire composites for electrochemical energy storage |
FR2935546B1 (en) | 2008-09-02 | 2010-09-17 | Arkema France | ELECTRODE COMPOSITE MATERIAL, BATTERY ELECTRODE CONSISTING OF SAID MATERIAL AND LITHIUM BATTERY COMPRISING SUCH AN ELECTRODE. |
US8216541B2 (en) * | 2008-09-03 | 2012-07-10 | Nanotek Instruments, Inc. | Process for producing dispersible and conductive nano graphene platelets from non-oxidized graphitic materials |
WO2010027336A1 (en) | 2008-09-08 | 2010-03-11 | Nanyang Technological University | Nanoparticle decorated nanostructured material as electrode material and method for obtaining the same |
WO2010027337A1 (en) | 2008-09-08 | 2010-03-11 | Nanyang Technological University | Electrode materials for metal-air batteries, fuel cells and supercapacitors |
WO2010028433A1 (en) | 2008-09-09 | 2010-03-18 | Cap-Xx Limited | A package for an electrical device |
US9099253B2 (en) | 2008-10-21 | 2015-08-04 | Brookhaven Science Associates, Llc | Electrochemical synthesis of elongated noble metal nanoparticles, such as nanowires and nanorods, on high-surface area carbon supports |
EP2389338B1 (en) | 2009-01-26 | 2013-06-19 | Dow Global Technologies LLC | Nitrate salt-based process for manufacture of graphite oxide |
EP2392021A2 (en) | 2009-02-02 | 2011-12-07 | Space Charge, LLC | Capacitors using preformed dielectric |
KR101024940B1 (en) | 2009-02-03 | 2011-03-31 | 삼성전기주식회사 | Hybrid supercapacitors using surface oxidized transition metal nitride aerogels |
KR101074027B1 (en) | 2009-03-03 | 2011-10-17 | 한국과학기술연구원 | Graphene composite nanofiber and the preparation method thereof |
US8147791B2 (en) * | 2009-03-20 | 2012-04-03 | Northrop Grumman Systems Corporation | Reduction of graphene oxide to graphene in high boiling point solvents |
US9118078B2 (en) | 2009-03-20 | 2015-08-25 | Northwestern University | Method of forming a film of graphite oxide single layers, and applications of same |
US8213157B2 (en) | 2009-04-17 | 2012-07-03 | University Of Delaware | Single-wall carbon nanotube supercapacitor |
KR101036164B1 (en) | 2009-04-24 | 2011-05-23 | 성균관대학교산학협력단 | Composite electrode and manufacturing method thereof |
CN101894679B (en) | 2009-05-20 | 2011-09-28 | 中国科学院金属研究所 | Method for preparing graphene-based flexible super capacitor and electrode material thereof |
EP2432733A4 (en) | 2009-05-22 | 2016-01-20 | Univ Rice William M | HIGHLY OXIDIZED GRAPHENE OXIDE AND METHODS OF MAKING SAME |
KR101038869B1 (en) | 2009-07-06 | 2011-06-02 | 삼성전기주식회사 | Electrode for capacitor and electric double layer capacitor comprising the same |
JP5399801B2 (en) | 2009-07-22 | 2014-01-29 | 日本化学工業株式会社 | Ionic liquid-containing gel, method for producing the same, and ion conductor |
CN101989499A (en) | 2009-07-29 | 2011-03-23 | 美国纳米股份有限公司 | Asymmetric electrochemical supercapacitor and method of manufacture thereof |
EP2462600A2 (en) | 2009-08-07 | 2012-06-13 | OC Oerlikon Balzers AG | All solid-state electrochemical double layer supercapacitor |
US20110038100A1 (en) | 2009-08-11 | 2011-02-17 | Chun Lu | Porous Carbon Oxide Nanocomposite Electrodes for High Energy Density Supercapacitors |
WO2011021982A1 (en) | 2009-08-20 | 2011-02-24 | Nanyang Technological University | Integrated electrode architectures for energy generation and storage |
KR20110035906A (en) | 2009-09-30 | 2011-04-06 | 가부시키가이샤 한도오따이 에네루기 켄큐쇼 | Capacitor |
US20110079748A1 (en) | 2009-10-02 | 2011-04-07 | Ruoff Rodney S | Exfoliation of Graphite Oxide in Propylene Carbonate and Thermal Reduction of Resulting Graphene Oxide Platelets |
CN101723310B (en) * | 2009-12-02 | 2013-06-05 | 吉林大学 | Light processing method for preparing conducting micro-nano structure by utilizing graphene oxide |
US8883042B2 (en) | 2009-12-16 | 2014-11-11 | Georgia Tech Research Corporation | Production of graphene sheets and features via laser processing of graphite oxide/ graphene oxide |
EP2518103A4 (en) | 2009-12-22 | 2014-07-30 | Suh Kwang Suck | Graphene dispersion and graphene-ionic liquid polymer compound |
US8652687B2 (en) * | 2009-12-24 | 2014-02-18 | Nanotek Instruments, Inc. | Conductive graphene polymer binder for electrochemical cell electrodes |
US8315039B2 (en) | 2009-12-28 | 2012-11-20 | Nanotek Instruments, Inc. | Spacer-modified nano graphene electrodes for supercapacitors |
US9640334B2 (en) | 2010-01-25 | 2017-05-02 | Nanotek Instruments, Inc. | Flexible asymmetric electrochemical cells using nano graphene platelet as an electrode material |
WO2011116369A2 (en) | 2010-03-19 | 2011-09-22 | Board Of Regents, The University Of Texas System | Electrophoretic deposition and reduction of graphene oxide to make graphene film coatings and electrode structures |
FR2957910B1 (en) | 2010-03-23 | 2012-05-11 | Arkema France | MASTER MIXTURE OF CARBON NANOTUBES FOR LIQUID FORMULATIONS, PARTICULARLY IN LI-ION BATTERIES |
US8451584B2 (en) | 2010-03-31 | 2013-05-28 | University Of Miami | Solid state energy storage device and method |
CN102254582B (en) * | 2010-05-18 | 2013-05-15 | 国家纳米科学中心 | A kind of graphene-based conductive material and preparation method thereof |
CN101844761B (en) * | 2010-05-28 | 2012-08-15 | 上海师范大学 | Method of adopting laser radiation for preparing reduction-oxidation graphene |
EP2593403B1 (en) | 2010-07-14 | 2020-03-04 | Monash University | Method for producing a gel film and filtration membrane prepared with this method |
US8134333B2 (en) | 2010-08-17 | 2012-03-13 | Ford Global Technologies, Llc | Battery and ultracapacitor device and method of use |
CN101950593B (en) | 2010-09-21 | 2012-10-10 | 中国科学院苏州纳米技术与纳米仿生研究所 | Composite material and application thereof serving as super capacitor electrode material |
US8753772B2 (en) | 2010-10-07 | 2014-06-17 | Battelle Memorial Institute | Graphene-sulfur nanocomposites for rechargeable lithium-sulfur battery electrodes |
US9786943B2 (en) | 2010-10-14 | 2017-10-10 | Ramot At Tel-Aviv University Ltd. | Direct liquid fuel cell having ammonia borane, hydrazine, derivatives thereof or/and mixtures thereof as fuel |
JP2014501028A (en) | 2010-10-27 | 2014-01-16 | ▲海▼洋王照明科技股▲ふん▼有限公司 | Composite electrode material, manufacturing method thereof, and application |
KR20120056556A (en) | 2010-11-25 | 2012-06-04 | 삼성전기주식회사 | Multi layered electrodes and super capacitor comprising the same |
KR102034506B1 (en) | 2010-12-23 | 2019-11-08 | 나노텍 인스트러먼츠, 인코포레이티드 | Surface-mediated lithium ion-exchanging energy storage device |
US8828608B2 (en) | 2011-01-06 | 2014-09-09 | Springpower International Inc. | Secondary lithium batteries having novel anodes |
KR101233420B1 (en) | 2011-02-11 | 2013-02-13 | 성균관대학교산학협력단 | A novel reducing agent for graphene oxide and process for reduced graphene oxide using the same |
JP2012169576A (en) | 2011-02-17 | 2012-09-06 | Nec Tokin Corp | Electrochemical device |
EP2680286B1 (en) | 2011-02-21 | 2019-06-19 | Japan Capacitor Industrial Co., Ltd. | Electrode foil, current collector, electrode, and electric energy storage element using same |
JP2012188484A (en) | 2011-03-09 | 2012-10-04 | National Institute Of Advanced Industrial Science & Technology | Method for producing electroconductive polymer having controlled shape |
WO2012128748A1 (en) | 2011-03-18 | 2012-09-27 | William Marsh Rice University | Patterned graphite oxide films and methods to make and use same |
US8503161B1 (en) | 2011-03-23 | 2013-08-06 | Hrl Laboratories, Llc | Supercapacitor cells and micro-supercapacitors |
US9892869B2 (en) | 2011-04-06 | 2018-02-13 | The Florida International University Board Of Trustees | Electrochemically activated C-MEMS electrodes for on-chip micro-supercapacitors |
SG192904A1 (en) | 2011-04-07 | 2013-09-30 | Univ Nanyang Tech | Multilayer film comprising metal nanoparticles and a graphene-based material and method of preparation thereof |
US20130026409A1 (en) | 2011-04-08 | 2013-01-31 | Recapping, Inc. | Composite ionic conducting electrolytes |
US8784768B2 (en) | 2011-05-26 | 2014-07-22 | GM Global Technology Operations LLC | Hierarchially porous carbon particles for electrochemical applications |
CN102275896A (en) | 2011-05-30 | 2011-12-14 | 无锡第六元素高科技发展有限公司 | Intercalation method for preparing graphite oxide |
WO2012170749A2 (en) | 2011-06-07 | 2012-12-13 | Fastcap Systems Corporation | Energy storage media for ultracapacitors |
KR20140064872A (en) | 2011-08-15 | 2014-05-28 | 퍼듀 리서치 파운데이션 | Methods and apparatus for the fabrication and use of graphene petal nanosheet structures |
CN103748035B (en) | 2011-08-18 | 2016-02-10 | 株式会社半导体能源研究所 | Form method and the graphene oxide salt of Graphene and graphene oxide salt |
US20130217289A1 (en) | 2011-09-13 | 2013-08-22 | Nanosi Advanced Technologies, Inc. | Super capacitor thread, materials and fabrication method |
CN104039695B (en) | 2011-09-19 | 2018-06-05 | 卧龙岗大学 | Redox graphene and its production method |
US8842417B2 (en) | 2011-09-23 | 2014-09-23 | Corning Incorporated | High voltage electro-chemical double layer capacitor |
BR112014008139A2 (en) | 2011-10-07 | 2017-04-11 | Applied Nanostructured Sols | battery hybrid capacitor and supercapacitor with active bifunctional electrolyte |
US8951675B2 (en) | 2011-10-13 | 2015-02-10 | Apple Inc. | Graphene current collectors in batteries for portable electronic devices |
KR101843194B1 (en) | 2011-10-21 | 2018-04-11 | 삼성전기주식회사 | Electric Double Layer Capacitor |
TWI430945B (en) | 2011-10-21 | 2014-03-21 | 昭和電工股份有限公司 | Graphite materials, battery electrodes with carbon materials and batteries |
CN102509632B (en) | 2011-10-28 | 2015-04-22 | 泉州师范学院 | A kind of hydrated structure SnO2/IrO2 xH2O oxide thin film electrode material and its preparation method |
WO2013070989A1 (en) | 2011-11-10 | 2013-05-16 | The Regents Of The University Of Colorado, A Body Corporate | Supercapacitor devices having composite electrodes formed by depositing metal oxide pseudocapacitor materials onto carbon substrates |
US9048025B2 (en) | 2011-11-14 | 2015-06-02 | Sumitomo Electric Industries, Ltd. | Electrode for electric storage device, electric storage device and manufacturing method of electrode for electric storage device |
SG11201503710XA (en) | 2011-11-18 | 2015-06-29 | Univ Rice William M | Graphene-carbon nanotube hybrid materials and use as electrodes |
US9601775B2 (en) | 2011-11-28 | 2017-03-21 | Zeon Corporation | Binder composition for secondary battery positive electrode, slurry composition for secondary battery positive electrode, secondary battery positive electrode, and secondary battery |
KR101297423B1 (en) | 2011-11-30 | 2013-08-14 | 한국전기연구원 | Graphene oxide reducing agent dispersed in high concentration by cation-pi interaction and its manufacturing method |
WO2013081152A1 (en) | 2011-12-02 | 2013-06-06 | 三菱レイヨン株式会社 | Binder resin for nonaqueous secondary battery electrode, binder resin composition for nonaqueous secondary battery electrode, slurry composition for nonaqueous secondary battery electrode, electrode for nonaqueous secondary battery, and nonaqueous secondary battery |
CN102491318B (en) | 2011-12-13 | 2013-08-14 | 河北工业大学 | Method for preparing graphene oxide |
TWI466153B (en) | 2011-12-15 | 2014-12-21 | Ind Tech Res Inst | Capacitor and manufacturing method thereof |
US20160077074A1 (en) | 2011-12-21 | 2016-03-17 | The Regents Of The University Of California | Interconnected corrugated carbon-based network |
KR101371288B1 (en) | 2011-12-22 | 2014-03-07 | 이화여자대학교 산학협력단 | Manganese oxide/graphene composite and producing method of the same |
US20130171502A1 (en) | 2011-12-29 | 2013-07-04 | Guorong Chen | Hybrid electrode and surface-mediated cell-based super-hybrid energy storage device containing same |
CN103208373B (en) | 2012-01-16 | 2015-09-30 | 清华大学 | Graphene electrodes and preparation method thereof and application |
CN102543483B (en) | 2012-01-17 | 2014-02-26 | 电子科技大学 | A kind of preparation method of the graphene material of supercapacitor |
KR101356791B1 (en) | 2012-01-20 | 2014-01-27 | 한국과학기술원 | film-type supercapacitors and method for fabricating the same |
US8841030B2 (en) | 2012-01-24 | 2014-09-23 | Enovix Corporation | Microstructured electrode structures |
US8771630B2 (en) | 2012-01-26 | 2014-07-08 | Enerage, Inc. | Method for the preparation of graphene |
WO2013120011A1 (en) | 2012-02-09 | 2013-08-15 | Energ2 Technologies, Inc. | Preparation of polymeric resins and carbon materials |
WO2013128082A1 (en) | 2012-02-28 | 2013-09-06 | Teknologian Tutkimuskeskus Vtt | Integrable electrochemical capacitor |
CN109524246B (en) | 2012-03-05 | 2021-07-27 | 加州大学评议会 | Capacitors with electrodes made of interconnected corrugated carbon-based networks |
US9120677B2 (en) | 2012-04-02 | 2015-09-01 | National Institute Of Aerospace Associates | Bulk preparation of holey graphene via controlled catalytic oxidation |
US8765303B2 (en) | 2012-04-02 | 2014-07-01 | Nanotek Instruments, Inc. | Lithium-ion cell having a high energy density and high power density |
US9384904B2 (en) | 2012-04-06 | 2016-07-05 | Semiconductor Energy Laboratory Co., Ltd. | Negative electrode for power storage device, method for forming the same, and power storage device |
US9360905B2 (en) | 2012-04-09 | 2016-06-07 | Nanotek Instruments, Inc. | Thermal management system containing an integrated graphene film for electronic devices |
WO2013155276A1 (en) | 2012-04-12 | 2013-10-17 | Wayne State University | Integrated 1-d and 2-d composites for asymmetric aqueous supercapacitors with high energy density |
WO2014011294A2 (en) | 2012-04-14 | 2014-01-16 | Northeastern University | Flexible and transparent supercapacitors and fabrication using thin film carbon electrodes with controlled morphologies |
US10079389B2 (en) | 2012-05-18 | 2018-09-18 | Xg Sciences, Inc. | Silicon-graphene nanocomposites for electrochemical applications |
US20130314844A1 (en) | 2012-05-23 | 2013-11-28 | Nanyang Technological University | Method of preparing reduced graphene oxide foam |
US9593225B2 (en) | 2012-06-04 | 2017-03-14 | The Curators Of The University Of Missouri | Multifunctional porous aramids (aerogels), fabrication thereof, and catalytic compositions derived therefrom |
WO2014011722A2 (en) | 2012-07-11 | 2014-01-16 | Jme, Inc. | Conductive material with charge-storage material in voids |
US9083010B2 (en) | 2012-07-18 | 2015-07-14 | Nthdegree Technologies Worldwide Inc. | Diatomaceous energy storage devices |
KR20140012464A (en) | 2012-07-20 | 2014-02-03 | 삼성에스디아이 주식회사 | Silicon alloy based negative active material and composition including the same and method of manufacturing the same and lithium rechargeble battery |
CN102730680B (en) | 2012-07-23 | 2014-12-03 | 清华大学深圳研究生院 | High-density high-rigidity graphene porous carbon material as well as preparation method and applications thereof |
US20140030590A1 (en) | 2012-07-25 | 2014-01-30 | Mingchao Wang | Solvent-free process based graphene electrode for energy storage devices |
US20140050947A1 (en) | 2012-08-07 | 2014-02-20 | Recapping, Inc. | Hybrid Electrochemical Energy Storage Devices |
US20140045058A1 (en) | 2012-08-09 | 2014-02-13 | Bluestone Global Tech Limited | Graphene Hybrid Layer Electrodes for Energy Storage |
AU2013305486B2 (en) | 2012-08-23 | 2017-02-23 | The University Of Melbourne | Graphene-based materials |
JP2014053209A (en) | 2012-09-07 | 2014-03-20 | Tokyo Ohka Kogyo Co Ltd | Interdigital electrode and production method of the same, and secondary battery |
KR20140045880A (en) | 2012-10-09 | 2014-04-17 | 가부시키가이샤 한도오따이 에네루기 켄큐쇼 | Power storage device |
CN104813425A (en) | 2012-10-17 | 2015-07-29 | 新加坡科技设计大学 | High specific capacitance and high power density of printed flexible micro-supercapacitors |
WO2014066824A1 (en) | 2012-10-25 | 2014-05-01 | Purdue Research Foundation | A super-capacitor and arrangement for miniature implantable medical devices |
US20140118883A1 (en) | 2012-10-31 | 2014-05-01 | Jian Xie | Graphene supported vanadium oxide monolayer capacitor material and method of making the same |
WO2014072877A2 (en) | 2012-11-08 | 2014-05-15 | Basf Se | Graphene based screen-printable ink and its use in supercapacitors |
CN102923698B (en) | 2012-11-19 | 2014-11-12 | 中南大学 | Preparation method for three-dimensional porous graphene for supercapacitor |
KR101505145B1 (en) | 2012-11-21 | 2015-03-24 | 주식회사 그래핀올 | Method of forming graphene quantum dots |
KR20140075836A (en) | 2012-11-27 | 2014-06-20 | 삼성전기주식회사 | Electrode structure and method for manufacturing the electrode structure, and apparatus for storaging energy with the electrode structure |
WO2014099517A1 (en) | 2012-12-19 | 2014-06-26 | Imra America, Inc. | Negative electrode active material for energy storage |
EP2747175B1 (en) | 2012-12-21 | 2018-08-15 | Belenos Clean Power Holding AG | Self-assembled composite of graphene oxide and H4V3O8 |
US9887046B2 (en) | 2012-12-28 | 2018-02-06 | Jiangnan University | Graphene composites and methods of making and using the same |
US20140205841A1 (en) | 2013-01-18 | 2014-07-24 | Hongwei Qiu | Granules of graphene oxide by spray drying |
US20150380176A1 (en) | 2013-02-08 | 2015-12-31 | Lg Electronics Inc. | Graphene lithium ion capacitor |
WO2014138721A1 (en) | 2013-03-08 | 2014-09-12 | Sri International | High permittivity nanocomposites for electronic devices |
KR101447680B1 (en) | 2013-03-08 | 2014-10-08 | 한국과학기술연구원 | Method for manufacturing electrode, electrode manufactured according to the method, supercapacitor including the electrode, and rechargable lithium battery including the electrode |
EP2964572A4 (en) | 2013-03-08 | 2017-03-08 | Monash University | Graphene-based films |
JP6158308B2 (en) | 2013-03-28 | 2017-07-05 | 国立大学法人東北大学 | Power storage device and electrode material thereof |
JP6214028B2 (en) | 2013-04-05 | 2017-10-18 | 国立大学法人北海道大学 | Method for producing graphene oxide-containing liquid and use thereof |
WO2014170912A1 (en) | 2013-04-15 | 2014-10-23 | Council Of Scientific & Industrial Ressearch | All-solid-state-supercapacitor and a process for the fabrication thereof |
TWI518995B (en) | 2013-04-16 | 2016-01-21 | Quanta Comp Inc | The diversity antenna combination and its dynamic adjustment of the input impedance are wide Frequency antenna |
WO2014181763A1 (en) | 2013-05-07 | 2014-11-13 | 山本化成株式会社 | Thermosensitive color-developing composition and thermosensitive recording material using same |
CN104143630A (en) | 2013-05-09 | 2014-11-12 | 中国科学院大连化学物理研究所 | Application of graphene-nano metal oxide composites in lithium-sulfur batteries |
JP2014225508A (en) | 2013-05-15 | 2014-12-04 | 住友電気工業株式会社 | Electrode for electricity storage device, electricity storage device, and method for manufacturing electrode for electricity storage device |
US20140370383A1 (en) | 2013-06-12 | 2014-12-18 | E I Du Pont De Nemours And Company | Ethylene copolymer-fluoropolymer hybrid battery binder |
US20150044560A1 (en) | 2013-08-09 | 2015-02-12 | Semiconductor Energy Laboratory Co., Ltd. | Electrode for lithium-ion secondary battery and manufacturing method thereof, and lithium-ion secondary battery |
WO2015023974A1 (en) | 2013-08-15 | 2015-02-19 | The Regents Of The University Of California | A multicomponent approach to enhance stability and capacitance in polymer-hybrid supercapacitors |
CN103508450B (en) | 2013-09-11 | 2015-05-20 | 清华大学 | Laser preparation method for large-area patterned graphene |
US10214422B2 (en) | 2013-10-16 | 2019-02-26 | Research & Business Foundation Sungkyunkwan University | Interlayer distance controlled graphene, supercapacitor and method of producing the same |
WO2015061327A1 (en) | 2013-10-21 | 2015-04-30 | The Penn State Research Foundation | Method for preparing graphene oxide films and fibers |
CN203631326U (en) | 2013-11-06 | 2014-06-04 | 西安中科麦特电子技术设备有限公司 | Super capacitor with graphene electrodes |
CN105900200A (en) | 2013-11-08 | 2016-08-24 | 加利福尼亚大学董事会 | High performance supercapacitor based on three-dimensional graphene framework |
CN103723715B (en) | 2013-12-02 | 2015-08-12 | 辽宁师范大学 | The preparation method of the ultracapacitor graphene macroform that hole is adjustable |
CN203839212U (en) | 2014-01-06 | 2014-09-17 | 常州立方能源技术有限公司 | Super capacitor electrode plate with three-dimensional graphene gradient content structure |
EP2905257B1 (en) | 2014-02-05 | 2018-04-04 | Belenos Clean Power Holding AG | Method of production of graphite oxide |
US9580325B2 (en) | 2014-02-06 | 2017-02-28 | Nanotek Instruments, Inc. | Process for producing highly oriented graphene films |
MX2016010718A (en) | 2014-02-17 | 2016-11-07 | Univ Rice William M | Laser induced graphene materials and their use in electronic devices. |
US20170025557A1 (en) | 2014-04-02 | 2017-01-26 | Georgia Tech Research Corporation | Broadband reduced graphite oxide based photovoltaic devices |
JP6313636B2 (en) | 2014-04-04 | 2018-04-18 | 国立研究開発法人物質・材料研究機構 | Superlattice structure, manufacturing method thereof, and electrode material using the same |
EP2933229A1 (en) | 2014-04-17 | 2015-10-21 | Basf Se | Electrochemical capacitor devices using two-dimensional carbon material for high frequency AC line filtering |
JP6885865B2 (en) | 2014-04-25 | 2021-06-16 | サウス ダコタ ボード オブ リージェンツ | Large capacity electrode |
JP2015218085A (en) | 2014-05-16 | 2015-12-07 | 国立大学法人信州大学 | Activated graphene monolith and method for producing the same |
CN104229777B (en) | 2014-05-28 | 2016-06-15 | 淮海工学院 | A kind of green reducing preparation method of self-supporting oxidation graphene film |
WO2015192008A2 (en) | 2014-06-13 | 2015-12-17 | Pope Michael A | Batteries incorporating graphene membranes for extending the cycle-life of lithium-ion batteries |
US20150364755A1 (en) | 2014-06-16 | 2015-12-17 | The Regents Of The University Of California | Silicon Oxide (SiO) Anode Enabled by a Conductive Polymer Binder and Performance Enhancement by Stabilized Lithium Metal Power (SLMP) |
MX378624B (en) | 2014-06-16 | 2025-03-10 | Univ California | HYBRID ELECTROCHEMICAL CELL. |
US10181618B2 (en) | 2014-07-29 | 2019-01-15 | Agency For Science, Technology And Research | Method of preparing a porous carbon material |
JP6293606B2 (en) | 2014-07-30 | 2018-03-14 | 株式会社東芝 | Composite, composite manufacturing method, non-aqueous electrolyte battery active material, and non-aqueous electrolyte battery |
US9742001B2 (en) | 2014-08-07 | 2017-08-22 | Nanotek Instruments, Inc. | Graphene foam-protected anode active materials for lithium batteries |
CN104201438B (en) | 2014-09-23 | 2016-08-17 | 中国地质大学(武汉) | A kind of lithium-air battery based on graphene oxide-carbon paper gas catalysis electrode |
JP2017532261A (en) | 2014-10-03 | 2017-11-02 | イー・アイ・デュポン・ドウ・ヌムール・アンド・カンパニーE.I.Du Pont De Nemours And Company | Multilayer food casing or food film |
US20160099116A1 (en) | 2014-10-05 | 2016-04-07 | Yongzhi Yang | Methods and apparatus for the production of capacitor with electrodes made of interconnected corrugated carbon-based network |
CN104299794B (en) | 2014-10-16 | 2017-07-21 | 北京航空航天大学 | A kind of ultracapacitor 3 d function graphite alkene and preparation method thereof |
CN104355306B (en) | 2014-10-17 | 2016-04-13 | 浙江碳谷上希材料科技有限公司 | A kind of one kettle way prepares the method for single-layer graphene oxide fast |
CN105585003B (en) | 2014-10-22 | 2019-05-31 | 肖彦社 | A kind of large-scale continuous preparation method and its equipment of graphene oxide and graphene nanometer sheet |
CN107077977B (en) | 2014-11-07 | 2020-04-21 | 谢炳荣 | Printed supercapacitor based on graphene |
US10734167B2 (en) | 2014-11-18 | 2020-08-04 | The Regents Of The University Of California | Porous interconnected corrugated carbon-based network (ICCN) composite |
US20190088420A1 (en) | 2014-11-26 | 2019-03-21 | William Marsh Rice University | Laser induced graphene hybrid materials for electronic devices |
US10333145B2 (en) | 2014-12-10 | 2019-06-25 | Purdue Research Foundation | Methods of making electrodes, electrodes made therefrom, and electrochemical energy storage cells utilizing the electrodes |
CN104637694A (en) | 2015-02-03 | 2015-05-20 | 武汉理工大学 | Micro super capacitor nano-device based on porous graphene-supported polyaniline heterostructure and manufacturing method thereof |
CN104617300A (en) | 2015-02-09 | 2015-05-13 | 天津师范大学 | Method for preparing lithium ion battery anode/cathode material from reduced graphene oxide |
CN104892935B (en) | 2015-05-21 | 2017-03-01 | 安徽大学 | A kind of method of synthesized polyaniline nanotube |
JP6455861B2 (en) | 2015-05-28 | 2019-01-23 | 国立研究開発法人物質・材料研究機構 | Electrode material, method for producing the same, and power storage device using the same |
CN105062074B (en) | 2015-07-21 | 2018-09-04 | 中国科学院过程工程研究所 | One kind is for direct-current ultra high voltage insulation composition, preparation method and its usage |
WO2017023797A1 (en) | 2015-07-31 | 2017-02-09 | Ada Technologies, Inc. | High energy and power electrochemical device and method of making and using same |
US9773622B2 (en) | 2015-08-26 | 2017-09-26 | Nanotek Instruments, Inc. | Porous particles of interconnected 3D graphene as a supercapacitor electrode active material and production process |
CN108028366B (en) | 2015-09-18 | 2021-01-15 | 东丽株式会社 | Graphene/organic solvent dispersion liquid, method for producing same, and method for producing electrode for lithium ion battery |
CN105217621A (en) | 2015-10-30 | 2016-01-06 | 浙江理工大学 | A kind of graphene oxide preparation method of size uniformity |
KR102631764B1 (en) | 2015-12-22 | 2024-01-30 | 더 리전트 오브 더 유니버시티 오브 캘리포니아 | Cellular graphene film |
US9905373B2 (en) | 2016-01-04 | 2018-02-27 | Nanotek Instruments, Inc. | Supercapacitor having an integral 3D graphene-carbon hybrid foam-based electrode |
US9437372B1 (en) | 2016-01-11 | 2016-09-06 | Nanotek Instruments, Inc. | Process for producing graphene foam supercapacitor electrode |
WO2017122230A1 (en) | 2016-01-13 | 2017-07-20 | Nec Corporation | Hierarchical oxygen containing carbon anode for lithium ion batteries with high capacity and fast charging capability |
JP7150328B2 (en) | 2016-01-22 | 2022-10-11 | ザ リージェンツ オブ ザ ユニバーシティ オブ カリフォルニア | high voltage device |
AU2017238201B2 (en) | 2016-03-23 | 2022-01-27 | Nanotech Energy, Inc. | Devices and methods for high voltage and solar applications |
EA039953B1 (en) | 2016-04-01 | 2022-03-31 | Дзе Риджентс Оф Дзе Юниверсити Оф Калифорния | Direct growth of polyaniline nanotubes on carbon cloth for flexible and high-performance supercapacitors |
US9899672B2 (en) | 2016-05-17 | 2018-02-20 | Nanotek Instruments, Inc. | Chemical-free production of graphene-encapsulated electrode active material particles for battery applications |
US11097951B2 (en) | 2016-06-24 | 2021-08-24 | The Regents Of The University Of California | Production of carbon-based oxide and reduced carbon-based oxide on a large scale |
CN106158426B (en) | 2016-08-19 | 2018-01-26 | 南京林业大学 | A kind of method for preparing flexible supercapacitor linear electrode |
JP7109790B2 (en) | 2016-08-31 | 2022-08-01 | ザ リージェンツ オブ ザ ユニバーシティ オブ カリフォルニア | Devices containing carbonaceous materials and their manufacture |
CN106449143A (en) | 2016-10-31 | 2017-02-22 | 安徽工业大学 | Preparing method of nickel-based lamellar double hydroxide/reduced graphene oxide supercapacitor electrode material |
EP3639319B1 (en) | 2017-06-14 | 2023-08-09 | The Regents of The University of California | Electrodes and electrolytes for aqueous electrochemical energy storage systems |
AU2018301683B2 (en) | 2017-07-14 | 2024-04-04 | The Regents Of The University Of California | Simple route to highly conductive porous graphene from carbon nanodots for supercapacitor applications |
US10193139B1 (en) | 2018-02-01 | 2019-01-29 | The Regents Of The University Of California | Redox and ion-adsorbtion electrodes and energy storage devices |
CN108822527A (en) | 2018-05-25 | 2018-11-16 | 陕西科技大学 | The modified aqueous polyurethane nano composite material and preparation method of carbon quantum dot |
CN109686585A (en) | 2018-12-21 | 2019-04-26 | 山东大学 | A kind of water system Asymmetric Supercapacitor and preparation method thereof based on NiCo-LDH/rGO and rGO |
CN111807348A (en) | 2020-07-10 | 2020-10-23 | 苏州星烁纳米科技有限公司 | Carbon quantum dot and preparation method thereof |
-
2012
- 2012-12-21 US US13/725,073 patent/US20160077074A1/en not_active Abandoned
- 2012-12-21 KR KR1020147020353A patent/KR102071841B1/en active Active
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- 2012-12-21 EP EP12874989.2A patent/EP2794475B1/en active Active
- 2012-12-21 JP JP2014548972A patent/JP6184421B2/en active Active
- 2012-12-21 AU AU2012378149A patent/AU2012378149B2/en active Active
- 2012-12-21 CA CA2862806A patent/CA2862806C/en active Active
- 2012-12-21 WO PCT/US2012/071407 patent/WO2013162649A2/en active Application Filing
- 2012-12-21 CN CN202011342273.6A patent/CN112661139B/en active Active
- 2012-12-21 ES ES12874989T patent/ES2785095T3/en active Active
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- 2015-03-10 HK HK15102451.1A patent/HK1201779A1/en unknown
-
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- 2017-02-08 US US15/427,210 patent/US10648958B2/en active Active
-
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- 2020-02-14 US US16/791,504 patent/US11397173B2/en active Active
-
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- 2022-07-25 US US17/872,380 patent/US12153032B2/en active Active
Patent Citations (8)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US20100221508A1 (en) * | 2009-02-27 | 2010-09-02 | Northwestern University | Methods of flash reduction and patterning of graphite oxide and its polymer composites |
US20100266964A1 (en) * | 2009-04-16 | 2010-10-21 | S Scott Gilje | Graphene oxide deoxygenation |
WO2011072213A2 (en) * | 2009-12-10 | 2011-06-16 | Virginia Commonwealth University | Production of graphene and nanoparticle catalysts supported on graphene using laser radiation |
US20110143101A1 (en) * | 2009-12-11 | 2011-06-16 | Adarsh Sandhu | Graphene structure, method for producing the same, electronic device element and electronic device |
US20120145234A1 (en) * | 2010-10-10 | 2012-06-14 | The Trustees Of Princeton University | Graphene electrodes for solar cells |
US20130048949A1 (en) * | 2011-05-19 | 2013-02-28 | Yu Xia | Carbonaceous Nanomaterial-Based Thin-Film Transistors |
US20130056703A1 (en) * | 2011-09-06 | 2013-03-07 | Infineon Technologies Ag | Sensor Device and Method |
US20130056346A1 (en) * | 2011-09-06 | 2013-03-07 | Indian Institute Of Technology Madras | Production of graphene using electromagnetic radiation |
Non-Patent Citations (1)
Title |
---|
Zhang et al, Direct imprinting of microcircuits on graphene oxides film by femtosecond laser reduction, Nano Today, 2010 (5), page 15-20 * |
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AU2012378149A1 (en) | 2014-07-17 |
ES2785095T3 (en) | 2020-10-05 |
DK2794475T3 (en) | 2020-04-27 |
JP2015508379A (en) | 2015-03-19 |
WO2013162649A2 (en) | 2013-10-31 |
CN112661139A (en) | 2021-04-16 |
CN104125925A (en) | 2014-10-29 |
US20200232960A1 (en) | 2020-07-23 |
AU2012378149B2 (en) | 2016-10-20 |
KR20140116427A (en) | 2014-10-02 |
US12153032B2 (en) | 2024-11-26 |
US20170299563A1 (en) | 2017-10-19 |
EP2794475B1 (en) | 2020-02-19 |
CN112661139B (en) | 2024-11-22 |
KR102071841B1 (en) | 2020-01-31 |
JP6184421B2 (en) | 2017-08-23 |
EP2794475A2 (en) | 2014-10-29 |
US20230194492A1 (en) | 2023-06-22 |
US10648958B2 (en) | 2020-05-12 |
HK1201779A1 (en) | 2015-09-11 |
CA2862806A1 (en) | 2013-10-31 |
EP2794475A4 (en) | 2015-07-15 |
CA2862806C (en) | 2021-02-16 |
US11397173B2 (en) | 2022-07-26 |
WO2013162649A3 (en) | 2014-01-03 |
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