For Carbon Nanotubes Or Fullerenes Patents (Class 977/842)
  • Patent number: 8471132
    Abstract: A method for measuring intensity distribution of light is disclosed. The method includes the steps of manufacturing a superaligned carbon nanotube array arranged on a substrate; irradiating a top surface of the superaligned carbon nanotube array with a light source and changing the morphology of the top surface of the superaligned carbon nanotube array; and obtaining an intensity distribution of the light source by analyzing the morphology of the top surface of the superaligned carbon nanotube array.
    Type: Grant
    Filed: October 1, 2012
    Date of Patent: June 25, 2013
    Assignees: Tsinghua University, Hon Hai Precision Industry Co., Ltd.
    Inventors: Kai-Li Jiang, Jun Zhu, Chen Feng, Shou-Shan Fan
  • Patent number: 8470221
    Abstract: A method for making a carbon nanotube composite wire structure comprises the following steps. A supply unit, a collecting unit, and a wrapping unit are provided. The wrapping unit comprises a hollow rotating shaft, and a face plate mounted on the hollow rotating shaft. A linear structure is provided by the supply unit. The linear structure passes through the hollow rotating shaft and is fixed on a collecting unit. A carbon nanotube structure is drawn from a carbon nanotube array. The carbon nanotube array is loaded on the face plate. One end of the carbon nanotube structure is adhered to the linear structure. The face plate is rotated, and the linear structure is pulled along a fixed direction. As such the carbon nanotube structure is wrapping around the linear structure.
    Type: Grant
    Filed: December 30, 2010
    Date of Patent: June 25, 2013
    Assignees: Tsinghua University, Hon Hai Precision Industry Co., Ltd.
    Inventors: Yang Wei, Shou-Shan Fan
  • Patent number: 8470285
    Abstract: A method of liquid phase synthesis of carbon nanotubes in air comprising the steps of making a first liquid phase metal salt catalyst solution of a first predetermined volume; making a carbon source liquid phase solution of a second predetermined volume; ultrasonicating the first metal salt catalyst and the carbon source solutions to de-agglomerate and uniformly disperse their powder form into the solutions; depositing predetermined volumes of droplets of the first metal salt catalyst and the carbon source solutions onto a substrate; drying the first metal salt catalyst and the carbon source solutions on the substrate in an air environment for a predetermined time to form a carbon and catalyst composite; and heating the carbon and catalyst mixture in the air environment for a predetermined temperature and time to form one or more carbon nanotubes.
    Type: Grant
    Filed: April 4, 2012
    Date of Patent: June 25, 2013
    Assignee: The United States of America as represented by the Secretary of the Navy
    Inventors: Ryan P. Lu, Christopher K. Huynh, Ayax D. Rammirez, Debjyoti Banerjee
  • Publication number: 20130153855
    Abstract: A process comprises combining a Ce (IV) salt with a carbon material comprising CNT or graphene wherein the Ce (IV) salt is selected from a Ce (IV) ammonium salt of a nitrogen oxide acid and is dissolved in a solvent comprising water. The process is conducted under conditions to substantially oxidize the carbon material to produce an oxidized material that is substantially non-conducting. After the oxidation, the Ce (IV) is substantially removed from the oxidized material. This produces a product made by the process. An article of manufacture comprises the product on a substrate. The oxidized material can be formed as a pattern on the substrate. In another embodiment the substrate comprises an electronic device with the oxidized material patterning non-conductive areas separate from conductive areas of the non-oxidized carbon material, where the conductive areas are operatively associated with the device.
    Type: Application
    Filed: December 16, 2011
    Publication date: June 20, 2013
    Applicant: International Business Machines Corporation
    Inventors: Ali Afzali-Ardakani, Bhupesh Chandra, George S. Tulevski
  • Publication number: 20130153831
    Abstract: A process comprises combining a Ce (IV) salt dissolved in a solvent comprising water with a carbon material comprising CNT or graphene wherein the Ce (IV) salt is selected from a Ce (IV) ammonium salt of a nitrogen oxide acid, Ce (IV) ammonium salt of a sulfur oxide acid, Ce (IV) salt of a lower alkyl organo sulfur acid, or Ce (IV) salt of a lower alkane organo sulfur acid. In one embodiment the Ce (IV) salt is selected from Ce (IV) ammonium nitrate, Ce (IV) ammonium sulfate, Ce (IV) lower alkyllsulfonate, or Ce (IV) trifluoro lower alkanesulfonate. A product is produced by this process. An article of manufacture comprises this product on a substrate.
    Type: Application
    Filed: December 16, 2011
    Publication date: June 20, 2013
    Applicant: International Business Machines Corporation
    Inventors: Ali Afzali-Ardakani, Bhupesh Chandra, George S. Tulevski
  • Publication number: 20130146439
    Abstract: Described herein is a method for the photo-induced reduction/oxidation of carbon nanotubes, and their use in photochemical cells and in electrochemical cells for the generation of hydrogen.
    Type: Application
    Filed: December 8, 2011
    Publication date: June 13, 2013
    Inventors: Vsevolod Rostovtsev, Ming Zheng
  • Publication number: 20130149554
    Abstract: A method including providing graphene on a growth substrate; providing a target substrate on the graphene to form a first composite including the target substrate and graphene; and removing at least a portion of the first composite from the growth substrate.
    Type: Application
    Filed: December 8, 2011
    Publication date: June 13, 2013
    Inventors: Samiul Md HAQUE, Richard White, Chris Bower
  • Publication number: 20130140498
    Abstract: Methods and systems for improved dispersion and solubility of carbon materials such as carbon nanotubes through novel binary solvent blends, which include in some embodiments, a mixture of a dibasic ester blend and DMSO.
    Type: Application
    Filed: November 29, 2012
    Publication date: June 6, 2013
    Applicant: RHODIA OPERATIONS
    Inventor: RHODIA OPERATIONS
  • Publication number: 20130143067
    Abstract: A metal plate or wire coated with a graphene layer and a method for manufacturing the graphene coated metal plate or wire are provided. The graphene coated metal plate or wire can include a nickel layer or a copper layer coated on an outer surface of the metal plate or wire, and a graphene layer coated on an outer surface of the nickel layer or the copper layer. The graphene coated metal plate or wire can be manufactured by using a chemical vapor deposition equipment or spraying a reduced graphene oxide (RGO) solution or a graphene oxide (GO) solution on the surface.
    Type: Application
    Filed: February 8, 2012
    Publication date: June 6, 2013
    Applicant: K-TECHNOLOGY USA, INC.
    Inventors: Ki Il KIM, Young K. Kim, Sang-Woo Kim
  • Patent number: 8454922
    Abstract: A method of storing hydrogen using carbon nanotubes having a diameter ranging from 0.6-0.8 nm. The hydrogen may be stored in a container which is made of another material. The carbon nanotubes may be provided inside the container for adsorbing the hydrogen.
    Type: Grant
    Filed: July 10, 2009
    Date of Patent: June 4, 2013
    Assignee: City University of Hong Kong
    Inventor: Ruiqin Zhang
  • Patent number: 8455055
    Abstract: A method for aligning nanotubes. In one embodiment, a method is used to align nanotubes. A bath with nanotubes dispersed on the surface of a solution is provided. An attachment surface is provided to attach the nanotubes. The attachment surface is placed into the bath at an angle of around ninety degrees relative to a surface of the bath. The attachment surface is removed from the bath at a rate sufficient to apply a velocity to the nanotubes in the bath of nanotubes such that the nanotubes are aligned on the attachment surface in a direction that is substantially parallel to the direction at which the substrate is removed to form a plurality of aligned nanotubes.
    Type: Grant
    Filed: October 26, 2007
    Date of Patent: June 4, 2013
    Assignee: The Boeing Company
    Inventor: Keith Daniel Humfeld
  • Patent number: 8455047
    Abstract: A hybrid carbon nanotube and clay nanofiller is produced by a freeze-drying process performed on clay platelets, and carbon nanotubes grown on the clay platelets using a chemical vapor deposition process.
    Type: Grant
    Filed: April 26, 2007
    Date of Patent: June 4, 2013
    Assignee: Applied Nanotech Holdings, Inc.
    Inventors: Yunjun Li, James Novak
  • Patent number: 8454924
    Abstract: Cohesive assemblies comprising carbon are prepared by obtaining carbon in the form of powder, particles, flakes, or loose agglomerates, dispersing the carbon in a liquid halogen by mechanical mixing and/or sonication, and substantially removing the liquid halogen, typically by evaporation, whereby the cohesive assembly of carbon is formed. The method is especially suitable for preparing free-standing, monolithic assemblies of carbon nanotubes in the form of films, wafers, or discs, having high carbon packing density and low electrical resistivity. The assemblies have various potential applications, such as electrodes in batteries or supercapacitors or as electromagnetic interference shielding materials.
    Type: Grant
    Filed: September 2, 2011
    Date of Patent: June 4, 2013
    Assignees: Yazaki Corporation, Toray Industries, Inc.
    Inventors: Leonid Grigorian, Steven Colbern, Sean Imtiaz Brahim
  • Publication number: 20130136994
    Abstract: An improved anode material for a lithium ion battery is disclosed. The improved anode material can improve both electric conductivity and the mechanical resilience of the anode, thus drastically increasing the lifetime of lithium ion batteries.
    Type: Application
    Filed: November 30, 2011
    Publication date: May 30, 2013
    Inventors: Jun Ma, Zhaojie Wei, Guanghui Feng, Bin He, Gang Xu, Tao Zheng
  • Publication number: 20130134394
    Abstract: Techniques, apparatus and systems are described for wafer-scale processing of aligned nanotube devices and integrated circuits. In one aspect, a method can include growing aligned nanotubes on at least one of a wafer-scale quartz substrate or a wafer-scale sapphire substrate. The method can include transferring the grown aligned nanotubes onto a target substrate. Also, the method can include fabricating at least one device based on the transferred nanotubes.
    Type: Application
    Filed: January 14, 2013
    Publication date: May 30, 2013
    Applicant: University of Southern California
    Inventor: University of Southern California
  • Publication number: 20130130436
    Abstract: A dye-sensitized solar cell with hybrid nanostructures comprises a negative-polarity conductive substrate, a metal oxide layer, a positive-polarity conductive substrate and an electrolyte. The metal oxide layer has a plurality of nanoparticles and a plurality of nanotubes. The metal oxide layer and the electrolyte are arranged between the negative-polarity conductive substrate and the positive-polarity conductive substrate. The nanoparticles increase contact area with dye and thus enhance power generation efficiency. The nanotubes increase carrier mobility and thus effectively transfer electricity to electrodes. The solar cell integrates the advantages of nanoparticles and nanotubes and offsets the disadvantages thereof to effectively enhance the photovoltaic conversion efficiency of dye-sensitized solar cells.
    Type: Application
    Filed: January 16, 2013
    Publication date: May 23, 2013
    Applicant: NATIONAL YUNLIN UNIVERSITY OF SCIENCE AND TECHNOLOGY
    Inventor: NATIONAL YUNLIN UNIVERSITY OF SCIENCE AND TECHNOLOGY
  • Publication number: 20130130020
    Abstract: There is provided an electrode paste composition, an electrode for an electronic device using the same, and a method of manufacturing the same. The electrode for an electronic device includes: a substrate; a thin film layer formed on the substrate, the thin film layer including reduced graphene oxide (rGO); and an oxide layer formed between the substrate and the thin film layer. The electrode for an electronic device may have excellent uniform resistivity and electrical conductivity since the electrode is formed by coating the substrate with a solution containing graphene oxide having superior dispersibility and reducing the graphene oxide.
    Type: Application
    Filed: September 14, 2012
    Publication date: May 23, 2013
    Applicant: SAMSUNG ELECTRO-MECHANICS CO., LTD.
    Inventors: Woon Chun Kim, Kang Heon Hur
  • Publication number: 20130128412
    Abstract: The present invention relates to an electrode for an energy storage and a method for manufacturing the same and provides a useful effect of improving resistance characteristics of an electrode for an energy storage and strengthening adhesion by forming trenches of predetermined dimensions on a surface of a current collector, forming a conductive layer, which includes a conductive agent as much as possible, on the surface of the current collector, and forming a bonding layer including an active material, a conductive agent, and a binder and an electrode layer including an active material and a binder on the conductive layer.
    Type: Application
    Filed: March 1, 2012
    Publication date: May 23, 2013
    Inventors: Jun Hee Bae, Bae Kyun Kim, Ho Jin Yun, Yeong Su Cho, Chang Ryul Jung, Hak Kwan Kim
  • Patent number: 8444950
    Abstract: A method for forming polymer carbon nanotube composites, the method comprising: contacting carbon nanotubes with ozone to functionalize the sidewalls of the carbon nanotubes with at least one oxygen moiety; and reacting the functionalized carbon nanotubes with at least one monomer or at least one polymer or copolymer to attach polymer chains to the sidewalls of the carbon nanotubes.
    Type: Grant
    Filed: November 21, 2008
    Date of Patent: May 21, 2013
    Assignees: Nanoledge Inc., Centre National de la Recherche Scientifique (CNRS)
    Inventors: Kai Schierholz, Patrice Lucas, Bernard Boutevin, François Ganachaud
  • Publication number: 20130119348
    Abstract: RF transistors are fabricated at complete wafer scale using a nanotube deposition technique capable of forming high-density, uniform semiconducting nanotube thin films at complete wafer scale, and electrical characterization reveals that such devices exhibit gigahertz operation, linearity, and large transconductance and current drive.
    Type: Application
    Filed: June 8, 2012
    Publication date: May 16, 2013
    Inventors: Chongwu Zhou, Alexander Badmaev, Chuan Wang
  • Publication number: 20130119349
    Abstract: A graphene transistor includes: a gate electrode on a substrate; a gate insulating layer on the gate electrode; a graphene channel on the gate insulating layer; a source electrode and a drain electrode on the graphene channel, the source and drain electrode being separate from each other; and a cover that covers upper surfaces of the source electrode and the drain electrode and forms an air gap above the graphene channel between the source electrode and the drain electrode.
    Type: Application
    Filed: November 2, 2012
    Publication date: May 16, 2013
    Applicant: SAMSUNG ELECTRONICS CO., LTD.
    Inventors: Hyun-jong CHUNG, U-in CHUNG, Ki-nam KIM
  • Publication number: 20130113102
    Abstract: An interconnect structure and method for fabricating the interconnect structure having enhanced performance and reliability, by utilizing a graphene-based barrier metal layer to block oxygen intrusion from a dielectric layer into the interconnect structure and block copper diffusion from the interconnect structure into the dielectric layer, are disclosed. At least one opening is formed in a dielectric layer. A graphene-based barrier metal layer disposed on the dielectric layer is formed. A seed layer disposed on the graphene-based barrier metal layer is formed. An electroplated copper layer disposed on the seed layer is formed. A planarized surface is formed, wherein a portion of the graphene-based barrier metal layer, the seed layer, and the electroplated copper layer are removed. In addition, a capping layer disposed on the planarized surface is formed.
    Type: Application
    Filed: November 8, 2011
    Publication date: May 9, 2013
    Applicant: INTERNATIONAL BUSINESS MACHINES CORPORATION
    Inventors: Junjing Bao, Shaoning Yao, Xuesong Li, Samuel S. S. Choi
  • Publication number: 20130113081
    Abstract: A plate varactor includes a dielectric substrate and a first electrode embedded in a surface of the substrate. A capacitor dielectric layer is disposed over the first electrode, and a layer of graphene is formed over the dielectric layer to contribute a quantum capacitance component to the dielectric layer. An upper electrode is formed on the layer of graphene. Other embodiments and methods for fabrication are also included.
    Type: Application
    Filed: November 8, 2011
    Publication date: May 9, 2013
    Applicant: INTERNATIONAL BUSINESS MACHINES CORPORATION
    Inventors: ZHIHONG CHEN, SHU-JEN HAN, SIYURANGA O. KOSWATTA, ALBERTO VALDES GARCIA
  • Patent number: 8435374
    Abstract: A method for making a carbon nanotube film includes fabricating a carbon nanotube array grown on a substrate. A drawing tool and a supporting member, having a surface carrying static charges, are provided. The static charges of the surface of the supporting member are neutralized. A plurality of carbon nanotubes in the carbon nanotube array is contacted and chosen by the drawing tool. The drawing tool is then moved along a direction away from the carbon nanotube array, thereby pulling out a carbon nanotube film. The carbon nanotube film is adhered the surface of the supporting member.
    Type: Grant
    Filed: August 16, 2010
    Date of Patent: May 7, 2013
    Assignee: Beijing FUNATE Innovation Technology Co., Ltd.
    Inventors: Chen Feng, Li Qian, Yu-Quan Wang, Liang Liu
  • Patent number: 8435595
    Abstract: The present disclosure generally relates to conductive films and methods for forming conductive films. In some examples, a substrate may be provided having a dispersion of silica nanoparticles provided on a surface thereof. Carbon nanotubes may be adhered to the dispersion of silica nanoparticles on the surface of the substrate to provide the conductive film on the substrate.
    Type: Grant
    Filed: July 15, 2009
    Date of Patent: May 7, 2013
    Assignee: Empire Technology Development, LLC
    Inventor: Seth Adrian Miller
  • Publication number: 20130108839
    Abstract: Methods of producing layers of patterned graphene with smooth edges are provided. The methods comprise the steps of fabricating a layer of crystalline graphene on a surface, wherein the layer of crystalline graphene has a crystallographically disordered edge, and decreasing the crystallographic disorder of the edge of the layer of crystalline graphene by heating the layer of crystalline graphene on the surface at an elevated temperature in a catalytic environment comprising carbon-containing molecules.
    Type: Application
    Filed: October 27, 2011
    Publication date: May 2, 2013
    Inventors: Michael S. Arnold, Padma Gopalan, Nathaniel S. Safron, Myungwoong Kim
  • Patent number: 8431053
    Abstract: The present disclosure relates to a method for making a carbon nanotube structure. The method includes steps of providing a tubular carbon nanotube array; selecting a carbon nanotube segment having a predetermined width from the tubular carbon nanotube array using a drawing tool; and drawing the carbon nanotube segment along a radial direction of the tubular carbon nanotube array to achieve the carbon nanotube structure.
    Type: Grant
    Filed: August 13, 2010
    Date of Patent: April 30, 2013
    Assignee: Beijing FUNATE Innovation Technology Co., Ltd.
    Inventors: Liang Liu, Chen Feng
  • Publication number: 20130101497
    Abstract: A low-temperature process for preparing flat carbon based nanostructured material, and namely foliated, fine graphite particles having low thickness and high aspect ratio. The process comprises the steps of: subjecting a particulate graphite to a mechanical attrition treatment in the presence of an alkaline reactant or a mixture comprising the alkaline reactant; exposing the graphite particles to an intercalating solvent to cause the solvent to penetrate between carbon layers of graphite; and delivering an ultrasonic energy into a dispersion of the graphite particles for a period of time sufficient to cause the formation of the nanostructured material. The carbon based nanostructures (CBNS) obtained by this method have a thickness in the range of 4-20 nm and an aspect ratio 500-7000 and various surface chemistry, and can be used as a highly functional graphite material in a wide range of applications, in particular for electrochemical applications in batteries and fuel cells.
    Type: Application
    Filed: October 19, 2012
    Publication date: April 25, 2013
    Applicant: SHOWA DENKO K.K.
    Inventor: SHOWA DENKO K.K.
  • Publication number: 20130099194
    Abstract: There is provided a method for forming a graphene layer. The method includes forming an article that comprises a carbon-containing self-assembled monolayer (SAM). A layer of nickel is deposited on the SAM. The article is heated in a reducing atmosphere and coolded. The heating and cooling steps are carried out so as to convert the SAM to a graphene layer.
    Type: Application
    Filed: October 21, 2011
    Publication date: April 25, 2013
    Inventor: Ashok J. Maliakal
  • Publication number: 20130102084
    Abstract: Methods of forming graphene by graphite exfoliation, wherein the methods include: providing a graphite sample having atomic layers of carbon; introducing a salt and a solvent into the space between the atomic layers; expanding the space between the atomic layers using organic molecules and ions from the solvent and the salt; and separating the atomic layers using a driving force to form one or more sheets of graphene; the graphene produced by the methods can be used to form solar cells, to perform DNA analysis, and for other electrical, optical and biological applications.
    Type: Application
    Filed: June 24, 2011
    Publication date: April 25, 2013
    Applicant: Univeristy
    Inventors: Kian Ping Loh, Junzhong b
  • Publication number: 20130099195
    Abstract: The invention generally related to a method for preparing a layer of graphene directly on the surface of a semiconductor substrate. The method includes forming a carbon-containing layer on a front surface of a semiconductor substrate and depositing a metal film on the carbon layer. A thermal cycle degrades the carbon-containing layer, which forms graphene directly upon the semiconductor substrate upon cooling. In some embodiments, the carbon source is a carbon-containing gas, and the thermal cycle causes diffusion of carbon atoms into the metal film, which, upon cooling, segregate and precipitate into a layer of graphene directly on the semiconductor substrate.
    Type: Application
    Filed: October 16, 2012
    Publication date: April 25, 2013
    Applicants: KANSAS STATE UNIVERSITY RESEARCH FOUNDATION, MEMC ELECTRONIC MATERIALS, INC.
    Inventors: MEMC Electronic Materials, Inc., Kansas State University Research Foundation
  • Publication number: 20130099196
    Abstract: A novel method for fabrication of hybrid semiconductor-graphene nanostructures in large scale by floating graphene sheets on the surface of a solution is provided. Using this approach, crystalline ZnO nano/micro-rod bundles on graphene fabricated using chemical vapor deposition were prepared. UV detectors fabricated using the as-prepared hybrid ZnO-graphene nano-structure with graphene being one of the two electrodes show high sensitivity to ultraviolet light, suggesting the graphene remained intact during the ZnO growth. This growth process provides a low-cost and robust scheme for large-scale fabrication of semiconductor nanostructures on graphene and may be applied for synthesis of a variety of hybrid semiconductor-graphene nano-structures demanded for optoelectronic applications including photovoltaics, photodetection, and photocatalysis.
    Type: Application
    Filed: October 19, 2012
    Publication date: April 25, 2013
    Applicant: UNIVERSITY OF KANSAS
    Inventor: UNIVERSITY OF KANSAS
  • Publication number: 20130095314
    Abstract: In some embodiments, the present invention provides methods of immobilizing carbon nanotubes on a surface, wherein the method comprises: (1) mixing carbon nanotubes with a superacid to form a carbon nanotube solution; and (2) exposing the carbon nanotube solution to the surface. The exposing results in the immobilization of the carbon nanotubes on the surface. In some embodiments, the method occurs without the utilization of carbon nanotube wrapping molecules. Other embodiments of the present invention pertain to systems that comprise immobilized carbon nanotubes on a surface, as developed by the aforementioned methods.
    Type: Application
    Filed: January 11, 2011
    Publication date: April 18, 2013
    Applicant: William Marsh Rice University
    Inventors: Angel A. Marti-Arbona, Avishek Saha, Matteo Pasquali
  • Publication number: 20130095305
    Abstract: Provided are a graphene pattern and a process of preparing the same. Graphene is patterned in a predetermined shape on a substrate to form the graphene pattern. The graphene pattern can be formed by forming a graphitizing catalyst pattern on a substrate, contacting a carbonaceous material with the graphitizing catalyst and heat-treating the resultant.
    Type: Application
    Filed: November 20, 2012
    Publication date: April 18, 2013
    Applicant: SAMSUNG ELECTRONICS CO., LTD.
    Inventor: SAMSUNG ELECTRONICS CO., LTD.
  • Publication number: 20130092881
    Abstract: A method of forming an electrically conductive composite is disclosed that includes the steps of providing a first dielectric material and a second conductive material that is substantially dispersed within the first dielectric material; and applying an electric field through at least a portion of the combined first dielectric material and second conductive material such that the second conductive material undergoes electrophoresis and forms at least one electrically conductive path through the electrically conductive composite along the direction of the applied electric field.
    Type: Application
    Filed: October 13, 2011
    Publication date: April 18, 2013
    Applicant: FLEXCON COMPANY INC.
    Inventors: Kenneth Burnham, Richard Skov
  • Publication number: 20130089735
    Abstract: A method for manufacturing an inorganic-nano structure composite, a method for manufacturing a cabon nanotube composite by using the same, and a carbon nanotube composite manufactured by the same are provided. The method for manufacturing the inorganic-nano structure composite comprises a step of doping pentavalent elements on the nanostructure; and a step of growing the inorganic material from the doping points of the pentavalent elements by dipping the nanostructure on which the pentavalent elements are doped into a precursor solution of the inorganic material, and according to the present invention the pentavalent elements such as nitrogen are doped on the nanostructure and is utilized as the crystallization point of the inorganic material, instead of forming the separate coating layer to the organic-based nanostructure, or binding the binding group to the surface.
    Type: Application
    Filed: November 29, 2011
    Publication date: April 11, 2013
    Applicant: KAIST (Korea Advanced Insitute of Science and Tech
    Inventors: Sang-Ouk Kim, Won-jun Lee, Duck-hyun Lee, Jin-ah Lee
  • Patent number: 8414784
    Abstract: A conductive wire includes a plurality of thermoplastic filaments each having a surface, and a coating material having a plurality of carbon nanotubes dispersed therein. The coating material is bonded to the surface of each thermoplastic filament. The thermoplastic filaments having the coating bonded thereto are bundled and bonded to each other to form a substantially cylindrical conductor.
    Type: Grant
    Filed: December 21, 2010
    Date of Patent: April 9, 2013
    Assignee: The Boeing Company
    Inventor: Thomas K. Tsotsis
  • Patent number: 8415787
    Abstract: The present invention relates to a heat dissipator that includes a conductive substrate and a plurality of nanostructures supported by the conductive substrate. The nanostructures are at least partly embedded in an insulator. Each of the nanostructures includes a plurality of intermediate layers on the conductive substrate. At least two of the plurality of intermediate layers are interdiffused, and material of the at least two of the plurality of intermediate layers that are interdiffused is present in the nanostructure.
    Type: Grant
    Filed: May 21, 2012
    Date of Patent: April 9, 2013
    Assignee: Smoltek AB
    Inventor: Mohammad Shafiqul Kabir
  • Publication number: 20130084236
    Abstract: A method is disclosed for making graphenic carbon particles. The method includes introducing a hydrocarbon precursor material capable of forming a two-carbon-fragment species into a thermal zone, heating the hydrocarbon precursor material in the thermal zone to form the graphenic carbon particles from the hydrocarbon precursor material, and collecting the graphenic carbon particles. Apparatus for performing such a method, and graphenic particles produced by the method, are also disclosed.
    Type: Application
    Filed: September 30, 2011
    Publication date: April 4, 2013
    Applicant: PPG Industries Ohio, Inc.
    Inventors: Cheng-Hung Hung, Noel R. Vanier
  • Publication number: 20130085359
    Abstract: A flexible microelectrode for detecting neural signals and a method of fabricating the same are disclosed. The method comprises steps: growing a graphene electrode layer on a temporary substrate; growing a flexible substrate on the graphene electrode layer and patterning the flexible substrate; removing the temporary substrate but preserving the graphene electrode layer and the flexible substrate to form an electrode body; and using an insulating layer to wrap the electrode body but exposing a bio-electrode end to contact a living body and detect the signals thereof. The graphene electrode layer features high electric conductivity, high biocompatibility and low noise. The flexible substrate is bendable. Thus is improved the adherence of the skin tissue to the bio-electrode end and decreased the likelihood of skin inflammation.
    Type: Application
    Filed: January 27, 2012
    Publication date: April 4, 2013
    Inventors: Da-Jeng Yao, Chang-Hsiao Chen
  • Publication number: 20130084384
    Abstract: The conductivity of an active material layer provided in an electrode of a secondary battery is sufficiently increased and active material powders in a slurry containing active materials each have a certain size. Secondary particles are manufactured through the following steps: mixing at least active material powders and oxidized conductive material powders to form a slurry; drying the slurry to form a dried substance; grinding the dried substance to form a powder mixture; and reducing the powder mixture. Further, an electrode of a power storage device is manufactured through the following steps: forming a slurry containing at least the secondary particles; applying the slurry to a current collector; and drying the slurry over the current collector.
    Type: Application
    Filed: September 27, 2012
    Publication date: April 4, 2013
    Applicant: SEMICONDUCTOR ENERGY LABORATORY CO., LTD.
    Inventor: Semiconductor Energy Laboratory Co., Ltd.
  • Patent number: 8411051
    Abstract: A liquid crystal display screen includes an upper board, a lower board opposite to the upper board, and a liquid crystal layer located between the upper board and the lower board. The upper board includes a touch panel. The touch panel includes a plurality of transparent electrodes. At least one of the transparent electrodes includes a carbon nanotube structure.
    Type: Grant
    Filed: August 13, 2009
    Date of Patent: April 2, 2013
    Assignees: Tsinghua University, Hon Hai Precision Industry Co., Ltd.
    Inventors: Kai-Li Jiang, Liang Liu, Shou-Shan Fan, Ga-Lane Chen, Jia-Shyong Cheng, Jeah-Sheng Wu
  • Patent number: 8411052
    Abstract: A touch panel includes a first electrode plate and a second electrode plate spaced from the first electrode plate. The first electrode plate includes a first substrate, a plurality of first transparent electrodes, and a plurality of first signal wires. The second electrode plate includes a second substrate, a plurality of second transparent electrodes, and a plurality of second signal wires. Both the second transparent electrode and the first transparent electrode include a transparent carbon nanotube structure, the carbon nanotube structure includes of a plurality of metallic carbon nanotubes.
    Type: Grant
    Filed: September 3, 2009
    Date of Patent: April 2, 2013
    Assignees: Tsinghua University, Hon Hai Precision Industry Co., Ltd.
    Inventors: Kai-Li Jiang, Liang Liu, Shou-Shan Fan, Ga-Lane Chen, Jia-Shyong Cheng, Jeah-Sheng Wu
  • Publication number: 20130075654
    Abstract: A method of making metal nanoparticles and carbon nanotubes is disclosed. A mixture of a transition metal compound and an aromatic polymer, a precursor of an aromatic polymer, or an aromatic monomer is heated to form a metal nanoparticle composition, optionally containing carbon nanotubes.
    Type: Application
    Filed: November 19, 2012
    Publication date: March 28, 2013
    Inventors: Teddy M. Keller, Matthew Laskoski
  • Publication number: 20130075685
    Abstract: In some aspects, a reversible resistance-switching metal-insulator-metal stack is provided that includes a first conducting layer, a carbon nano-tube (“CNT”) material above the first conducting layer, a second conducting layer above the CNT material, and an air gap between the first conducting layer and the CNT material. Numerous other aspects are provided.
    Type: Application
    Filed: September 22, 2011
    Publication date: March 28, 2013
    Inventors: Yubao Li, Chu-Chen Fu
  • Publication number: 20130077030
    Abstract: The present invention discloses a liquid crystal display panel which comprises a color filter substrate and an array substrate, and further comprises a conductive sealant for bonding the color filter substrate and the array substrate. The conductive sealant includes a sealing adhesive and conductive particles, the conductive particle includes an organic resin core and a conductive coating of carbon nanotubes or graphene, the conductive coating is coated on the organic resin core, and the conductive particles are evenly distributed in the sealing adhesive. The present invention further discloses a manufacturing method of a liquid crystal display panel.
    Type: Application
    Filed: October 12, 2011
    Publication date: March 28, 2013
    Applicant: Shenzhen China Star Optoelectronics Technology Co. Ltd.
    Inventor: Jun Wang
  • Publication number: 20130075929
    Abstract: A semiconductor device of an embodiment includes: a substrate; a first catalytic metal film on the substrate; graphene on the first catalytic metal film; an interlayer insulating film on the graphene; a contact hole penetrating through the interlayer insulating film; a conductive film at the bottom portion of the contact hole, the conductive film being electrically connected to the graphene; a second catalytic metal film on the conductive film, the second catalytic metal film being subjected to plasma processing with at least one kind of gas selected from hydrogen, nitrogen, ammonia, and rare gas; and carbon nanotubes on the second catalytic metal film.
    Type: Application
    Filed: July 5, 2012
    Publication date: March 28, 2013
    Applicant: Kabushiki Kaisha Toshiba
    Inventors: Masayuki Katagiri, Yuichi Yamazaki, Makoto Wada, Tadashi Sakai, Naoshi Sakuma, Mariko Suzuki
  • Patent number: 8404519
    Abstract: A carbon nanotube (CNT) array is patterned on a substrate. The substrate can be a microelectronic die or a heat sink for a die. The patterned CNT array is patterned by using a patterned catalyst on the substrate to form the CNT array by growing. The patterned CNT array can also be patterned by using a patterned mask on the substrate to form the CNT array by growing. A computing system that uses the CNT array for heat transfer from the die is also used.
    Type: Grant
    Filed: May 16, 2011
    Date of Patent: March 26, 2013
    Assignee: Intel Corporation
    Inventors: Gregory M. Chrysler, Thomas S. Dory, James G. Maveety, Edward Prack, Unnikrishnan Vadakkanmaruveedu
  • Publication number: 20130071565
    Abstract: An apparatus for growing carbon nanostructures (CNSs) on a substrate can include at least two CNS growth zones with at least one intermediate zone disposed therebetween and a substrate inlet before the CNS growth zones sized to allow a spoolable length substrate to pass therethrough.
    Type: Application
    Filed: September 23, 2011
    Publication date: March 21, 2013
    Applicant: Applied Nanostructured Solutions, LLC
    Inventors: Harry C. Malecki, Jason L. Dahne, James P. Loebach, Randy L. Gaigler, Jordan T. Ledford
  • Publication number: 20130069041
    Abstract: A MOSFET with a graphene nano-ribbon, and a method for manufacturing the same are provided. The MOSFET comprises an insulating substrate; and an oxide protection layer on the insulating substrate. At least one graphene nano-ribbon is embedded in the oxide protection layer and has a surface which is exposed at a side surface of the oxide protection layer. A channel region is provided in each of the at least one graphene nano-ribbon. A source region and a drain regions are provided in each of the at least one graphene nano-ribbon. The channel region is located between the source region and the drain region. A gate dielectric is positioned on the at least one graphene nano-ribbon. A gate conductor on the gate dielectric. A source and drain contacts contact the source region and the drain region respectively on the side surface of the oxide protection layer.
    Type: Application
    Filed: November 18, 2011
    Publication date: March 21, 2013
    Inventors: Huilong Zhu, Qingqing Liang, Zhijiong Luo, Haizhou Yin