Carbon Nanotubes (cnts) Patents (Class 977/742)
  • Publication number: 20140369005
    Abstract: A thermal management device including a first face configured to be in contact with a hot source and a second face opposite the first face configured to be in contact with a cold source, and at least one network of cells filled with a solid/liquid phase-change material located in a cavity between the first and second faces, wherein the cells include walls formed of carbon nanotubes, wherein the nanotubes extend roughly from the first to the second face, thermally connecting the first face to the second face.
    Type: Application
    Filed: January 8, 2013
    Publication date: December 18, 2014
    Applicant: Commissariat a l'energie atomique et aux ene alt
    Inventors: Jerome Gavillet, Jean Dijon
  • Publication number: 20140367151
    Abstract: Disclosed herein is a transparent electrode, including: a colorless transparent polyimide film substrate; and a conductive layer formed on the substrate and including a conductive material containing carbon nanotubes, wherein the conductive layer includes a polymer binder. The transparent electrode is advantageous in that carbon nanotubes strongly adhere to a plastic substrate and the transparent electrode exhibits environmental stability.
    Type: Application
    Filed: December 26, 2012
    Publication date: December 18, 2014
    Applicant: KOLON INDUSTRIES, INC.
    Inventors: Sang Min Song, Hak Gee Jung, Hyo Jun Park, Sang Kyun Kim, Ye Seul Kim
  • Publication number: 20140370380
    Abstract: Provided are nanostructures containing electrochemically active materials, battery electrodes containing these nanostructures for use in electrochemical batteries, such as lithium ion batteries, and methods of forming the nanostructures and battery electrodes. The nanostructures include conductive cores, inner shells containing active materials, and outer shells partially coating the inner shells. The high capacity active materials having a stable capacity of at least about 1000 mAh/g can be used. Some examples include silicon, tin, and/or germanium. The outer shells may be configured to substantially prevent formation of Solid Electrolyte lnterphase (SEI) layers directly on the inner shells. The conductive cores and/or outer shells may include carbon containing materials. The nanostructures are used to form battery electrodes, in which the nanostructures that are in electronic communication with conductive substrates of the electrodes.
    Type: Application
    Filed: May 25, 2010
    Publication date: December 18, 2014
    Inventors: Yi Cui, Song Han, Ghyrn E. Loveness
  • Patent number: 8911859
    Abstract: A nanoporous network includes carbon nanotubes (CNTs) with the network having a pore size in a range from about 15 nm to about 35 nm. The nanoporous network can be coated, compressed, or any combination of these operations in the manufacture of various articles. A method of making a nanoporous network includes disposing a concentrated aqueous CNT solution in a mold, freezing the concentrated aqueous CNT solution, and subliming the frozen concentrated CNT solution in a vacuum chamber.
    Type: Grant
    Filed: November 3, 2011
    Date of Patent: December 16, 2014
    Assignee: Lockheed Martin Corporation
    Inventor: James M. Spatcher
  • Publication number: 20140361227
    Abstract: Provided by the present invention is a conductive resin composition which has, by adding small amount of a carbon nanotube thereto, high conductivity and superior processability including moldability while keeping original physical properties owned by the thermoplastic resin itself. Provided is a method for producing a conductive resin composition, that is, a method for producing a conductive resin composition which contains a carbon nanotube and a thermoplastic resin, wherein the method contains following steps of (A) and (B); namely, (A) a step of mixing and dispersing the carbon nanotube, a solvent, and the thermoplastic resin, thereby obtaining a carbon nanotube resin mixture, and (B) a step of removing the solvent while kneading the carbon nanotube resin mixture. Provided further is a conductive resin composition obtained by the said production method.
    Type: Application
    Filed: January 22, 2013
    Publication date: December 11, 2014
    Applicant: DAINICHISEIKA COLOR & CHEMICALS MFG. CO., LTD.
    Inventors: Hisaki Asakawa, Masayuki Shibata, Noritaka Sakuta, Takuma Itoh
  • Patent number: 8906132
    Abstract: The present invention relates to a surface-modified biomass which is crosslinked with an amine group-containing cationic polymer on the surface of a cell biomass, its preparation method, and a method for recovering valuable metals using the same. The surface-modified biomass of the present invention has an advantage of improving adsorption of and affinity with anionic pollutants as a result of further introducing a cationic functional group by crosslinking of the amine group-containing cationic polymer on the surface of the biomass. In addition, the method for recovering valuable metals with the present invention is environment-friendly, economical, and harmless to the human body.
    Type: Grant
    Filed: July 27, 2009
    Date of Patent: December 9, 2014
    Assignee: Industrial Cooperation Foundation Chonbuk National University
    Inventors: Yeoung-Sang Yun, Sung Wook Won, Sun Beom Choi, Sok Kim, Juan Mao, In-Seob Kwak, Jiyeong Park, Myung Hee Song, Min A Bae, Shi Yn Lee, Sneha Krishnamurthy, Thi Phuong Thuy Pham, Chul Woong Cho
  • Patent number: 8906335
    Abstract: Broad-area synthesis of aligned and densely-packed carbon nanotubes (CNT) is disclosed. CNT are repeatedly synthesized and then drawn together to locally and globally achieve increased packing densities. The process synthesizes an aligned, relatively sparse forest of CNT on a catalyzed sacrificial substrate. The catalyst is removed, thereby releasing the CNT but leaving them in place on the substrate. A liquid-induced collapse produces regions of more densely packed CNT and regions where no CNT remain. A fresh catalyst is deposited on the exposed regions of the substrate and a sparse forest of aligned CNT is regrown in these regions. The CNT also may form on the tops of the densified regions of CNT. The top-growth CNT may be removed or incorporated into the solid such that the solid is expanded axially. This process, e.g., growth then densification, is repeated to form a near-continuous solid of aligned and densely packed CNT.
    Type: Grant
    Filed: May 29, 2008
    Date of Patent: December 9, 2014
    Assignee: Lockheed Martin Corporation
    Inventor: Keith A. Slinker
  • Patent number: 8906495
    Abstract: This invention relates to a composite comprising carbon nanotubes coated with a polymer, wherein the polymer comprises at least one hydrophobic monomer unit. This invention also relates to a process for the production of a composite comprising a polymer and carbon nanotubes.
    Type: Grant
    Filed: September 13, 2007
    Date of Patent: December 9, 2014
    Assignee: The University of Nottingham
    Inventor: George Zheng Chen
  • Patent number: 8907384
    Abstract: Disclosed herein are methods of preparing and using doped MWNT electrodes, sensors and field-effect transistors. Devices incorporating doped MWNT electrodes, sensors and field-effect transistors are also disclosed.
    Type: Grant
    Filed: January 26, 2007
    Date of Patent: December 9, 2014
    Assignee: NanoSelect, Inc.
    Inventors: Salvatore J. Pace, Piu Francis Man, Ajeeta Pradip Patil, Kah Fatt Tan
  • Patent number: 8907080
    Abstract: Provided is a complex comprising a hydrophobic cluster compound and a ?-1,3-1,6-D-glucan having a degree of branching (a ratio of ?-1,6 linkages to ?-1,3 linkages) of 50 to 100%.
    Type: Grant
    Filed: November 26, 2010
    Date of Patent: December 9, 2014
    Assignees: Daiso Co., Ltd., Osaka City University, Osaka Prefecture University Public Corporation, Kyoto Prefectural Public University Corporation, National University Corporation Nara Institute of Science and Technology
    Inventors: Toshio Suzuki, Hideaki Ueda, Takeshi Nagasaki, Mitsunori Kirihata, Munenori Numata, Atsushi Ikeda
  • Publication number: 20140353020
    Abstract: A touch panel defines a touch region and a routing region. The touch panel includes a substrate, a transparent conductive layer, at least one electrode and at least one lead wire. The substrate has a surface and includes a planar part and a folded part extending from the planar part. The transparent conductive layer is located on the surface of the substrate. At least a first part of the transparent conductive layer is located on the planar part and located in the touch region. The at least one electrode is electrically connected to the conductive layer. The at least one lead wire is electrically connected to the at least one electrode in a one-to-one manner. At least part of the at least one lead wire is located on the folded part. The folded part is located in at least part of the routing region.
    Type: Application
    Filed: May 30, 2013
    Publication date: December 4, 2014
    Inventors: CHIH-HAN CHAO, PO-SHENG SHIH, JIA-SHYONG CHENG
  • Patent number: 8900485
    Abstract: A kind of photosensitive carbon nanotube slurry is disclosed. The photosensitive carbon nanotube slurry includes a first mixture and a second mixture. The first mixture includes carbon nanotubes, conducting particles, and a first organic carrier. The second mixture includes a photo polymerization monomer, a photo initiator, and a second organic carrier. The weight percentage of the first mixture and the second mixture ranges from about 50% to about 80% and about 20% to about 50%, respectively. Methods for making the photosensitive carbon nanotube slurry and methods for making cathode emitters using the photosensitive carbon nanotube slurry are also disclosed.
    Type: Grant
    Filed: September 7, 2012
    Date of Patent: December 2, 2014
    Assignees: Tsinghua University, Hon Hai Precision Industry Co., Ltd.
    Inventors: Hai-Yan Hao, Peng Liu, Chun-Hai Zhang, Shou-Shan Fan
  • Patent number: 8900773
    Abstract: An electrode for an electrochemical system, such as a fuel cell, is formed by an active layer including: pores; at least one catalyst; at least one ionomer; and electrically-conductive particles. The catalyst content per pore ranges between 30 and 500 mg/cm3 with respect to the pore volume.
    Type: Grant
    Filed: March 28, 2011
    Date of Patent: December 2, 2014
    Assignee: Commisariat a l'Energie Atomique et aux Energies Alternatives
    Inventors: Remi Vincent, Sylvie Escribano, Alejandro Franco
  • Patent number: 8900701
    Abstract: A fibrous columnar structure aggregate having excellent mechanical properties, a high specific surface area, excellent heat resistance, excellent pressure-sensitive adhesive properties under temperature conditions ranging from room temperature to a high temperature, and such pressure-sensitive adhesive property that its adhesive strength for adherends different from each other in surface free energy does not change (the aggregate is free of adherend selectivity). The fibrous columnar structure aggregate (1) includes fibrous columnar structures having a plurality of diameters, in which the distribution width of the diameter distribution of the fibrous columnar structures having the plurality of diameters is 10 nm or more, and the relative frequency of the mode of the diameter distribution is 30% or less.
    Type: Grant
    Filed: March 31, 2009
    Date of Patent: December 2, 2014
    Assignee: Nitto Denko Corporation
    Inventors: Youhei Maeno, Yoshikazu Nakayama, Kaori Hirahara
  • Patent number: 8900029
    Abstract: The present application relates to a method for making a carbon nanotube field emitter. A carbon nanotube film is drawn from the carbon nanotube array by a drawing tool. The carbon nanotube film includes a triangle region. A portion of the carbon nanotube film closed to the drawing tool is treated into a carbon nanotube wire including a vertex of the triangle region. The triangle region is cut from the carbon nanotube film by a laser beam along a cutting line. A distance between the vertex of the triangle region and the cutting line can be in a range from about 10 microns to about 5 millimeters.
    Type: Grant
    Filed: October 22, 2012
    Date of Patent: December 2, 2014
    Assignees: Tsinghua University, Hon Hai Precision Industry Co., Ltd.
    Inventors: Peng Liu, Shou-Shan Fan
  • Patent number: 8895371
    Abstract: A fin structure including a vertical alternating stack of a first isoelectric point material layer having a first isoelectric point and a second isoelectric material layer having a second isoelectric point less than the first isoelectric point is formed. The first and second isoelectric point material layers become oppositely charged in a solution with a pH between the first and second isoelectric points. Negative electrical charges are imparted onto carbon nanotubes by an anionic surfactant to the solution. The electrostatic attraction causes the carbon nanotubes to be selectively attached to the surfaces of the first isoelectric point material layer. Carbon nanotubes are attached to the first isoelectric point material layer in self-alignment along horizontal lengthwise directions of the fin structure. A transistor can be formed, which employs a plurality of vertically aligned horizontal carbon nanotubes as the channel.
    Type: Grant
    Filed: September 6, 2012
    Date of Patent: November 25, 2014
    Assignee: International Business Machines Corporation
    Inventors: Qing Cao, Dechao Guo, Shu-Jen Han, Yu Lu, Keith Kwong Hon Wong
  • Patent number: 8895841
    Abstract: A photovoltaic device includes a silicon substrate, an intrinsic layer, a carbon nanotube structure and a first electrode. The silicon substrate has a front surface and a rear surface. The intrinsic layer is disposed on the front surface of the silicon substrate. The carbon nanotube structure is disposed on the intrinsic layer. The first electrode is disposed on the rear surface of the silicon substrate.
    Type: Grant
    Filed: December 19, 2008
    Date of Patent: November 25, 2014
    Assignees: Tsinghua University, Hon Hai Precision Industry Co., Ltd.
    Inventors: Hai-Lin Sun, Kai-Li Jiang, Qun-Qing Li, Shou-Shan Fan
  • Publication number: 20140343210
    Abstract: The present invention relates to a process for synthesizing carbon nanotubes by continuous chemical vapour deposition at the surface of reinforcements, said reinforcements constituting a mixture A (i) of particles and/or fibres of a material comprising at least one oxygen atom and (ii) of particles and/or fibres of a material chosen from carbides and/or of a material comprising at least one silicon atom, said process comprising the following steps, carried out under a stream of inert gas(es) optionally as a mixture with hydrogen: (i) heating of said mixture of reinforcements A in a reaction chamber at a temperature ranging from 400° C. to 900° C.
    Type: Application
    Filed: December 7, 2012
    Publication date: November 20, 2014
    Inventors: Jinbo Bai, Anthony Dichiara, Jinkai Yuan
  • Publication number: 20140339168
    Abstract: A ceramic membrane for separating oil from water. The membrane contains a ceramic substrate having pore channels, and carbon nanotubes extending from surfaces of the ceramic substrate, wherein the ceramic substrate has a thickness of 0.1 to 50 mm and a porosity of 5 to 95%, the pore channels have a diameter of 0.001 to 20 ?m, and the carbon nanotubes constitute 0.01 to 40% by weight. Also disclosed are a method of preparing this membrane and a method of using it.
    Type: Application
    Filed: September 12, 2012
    Publication date: November 20, 2014
    Applicant: National University of Singapore
    Inventors: Liang Hong, Xinwei Chen
  • Publication number: 20140339592
    Abstract: A light emitting diode includes a patterned carbon nanotube layer, a first semiconductor layer, a second semiconductor layer, an active layer stacked on an epitaxial growth surface of a substrate in that sequence. A first portion of the patterned carbon nanotube layer is covered by the first semiconductor layer and a second portion of the patterned carbon nanotube layer is exposed. A first electrode is electrically connected with the second semiconductor layer. A second electrode electrically is electrically connected with the second portion of the patterned carbon nanotube layer.
    Type: Application
    Filed: July 31, 2014
    Publication date: November 20, 2014
    Inventors: YANG WEI, SHOU-SHAN FAN
  • Publication number: 20140338715
    Abstract: A method and device produce thermoelectric power and thermoelectric modules. In one embodiment, a thermoelectric module comprises N-type carbon nanotube film and P-type carbon nanotube film.
    Type: Application
    Filed: March 27, 2014
    Publication date: November 20, 2014
    Applicant: THE TEXAS A&M UNIVERSITY SYSTEM
    Inventors: Jaime C. Grunlan, Choongho Yu
  • Patent number: 8890123
    Abstract: A thin film transistor has a semiconducting layer comprising a polythiophene and carbon nanotubes. The semiconducting layer exhibits high mobility and high current on/off ratio.
    Type: Grant
    Filed: January 21, 2011
    Date of Patent: November 18, 2014
    Assignee: Samsung Electronics Co. Ltd.
    Inventor: Yiliang Wu
  • Patent number: 8889217
    Abstract: A method of making a transparent conductive film includes the steps of: providing a carbon nanotube array. At least one carbon nanotube film extracted from the carbon nanotube array. The carbon nanotube films are stacked on the substrate to form a carbon nanotube film structure. The carbon nanotube film structure is irradiated by a laser beam along a predetermined path to obtain a predetermined pattern. The predetermined pattern is separated from the other portion of the carbon nanotube film, thereby forming the transparent conductive film from the predetermined pattern of the carbon nanotube film.
    Type: Grant
    Filed: December 19, 2008
    Date of Patent: November 18, 2014
    Assignees: Tsinghua University, Hon Hai Precision Industry Co., Ltd.
    Inventors: Zhuo Chen, Kai-Li Jiang, Shou-Shan Fan
  • Patent number: 8890312
    Abstract: A heat dissipation structure with aligned carbon nanotube arrays formed on both sides. The carbon nanotube arrays in between a heat source and a cooler are used as thermal interface material extending and dissipating heat directly from a heat source surface to a cooler surface. In some embodiments, an adhesive material can be used to dispense around carbon nanotube arrays and assemble the heat dissipation structure in between a heat source and a cooler. In some other embodiments, carbon nanotube arrays are formed on at least one of a heat source surface and a cooler surface and connect them together by further growing. The carbon nanotube arrays can be exposed to the environment instead of being in between a heat source and a solid cooler, and can serve as fins to enlarge heat dissipation area and improve thermal convection.
    Type: Grant
    Filed: May 24, 2007
    Date of Patent: November 18, 2014
    Assignee: The Hong Kong University of Science and Technology
    Inventors: Matthew Ming Fai Yuen, Kai Zhang
  • Patent number: 8890116
    Abstract: Transistor devices having vertically stacked carbon nanotube channels and techniques for the fabrication thereof are provided. In one aspect, a transistor device is provided. The transistor device includes a substrate; a bottom gate embedded in the substrate with a top surface of the bottom gate being substantially coplanar with a surface of the substrate; a stack of device layers on the substrate over the bottom gate, wherein each of the device layers in the stack includes a first dielectric, a carbon nanotube channel on the first dielectric, a second dielectric on the carbon nanotube channel and a top gate on the second dielectric; and source and drain contacts that interconnect the carbon nanotube channels in parallel. A method of fabricating a transistor device is also provided.
    Type: Grant
    Filed: September 11, 2012
    Date of Patent: November 18, 2014
    Assignee: International Business Machines Corporation
    Inventors: Zhihong Chen, Aaron Daniel Franklin, Shu-Jen Han
  • Publication number: 20140335419
    Abstract: Provided is positive electrode material for a highly safe lithium-ion secondary battery that can charge and discharge a large current while having long service life. Disclosed are composite particles comprising: at least one carbon material selected from the group consisting of (i) fibrous carbon material, (ii) chain-like carbon material, and (iii) carbon material produced by linking together fibrous carbon material and chain-like carbon material; and lithium-containing phosphate, wherein at least one fine pore originating from the at least one carbon material opens to outside the composite particle. Preferably, the composite particles are coated with carbon. The fibrous carbon material is preferably a carbon nanotube with an average fiber size of 5 to 200 nm. The chain-like carbon material is preferably carbon black produced by linking, like a chain, primary particles with an average particle size of 10 to 100 nm.
    Type: Application
    Filed: November 14, 2012
    Publication date: November 13, 2014
    Applicant: DENKI KAGAKU KOGYO KABUSHIKI KAISHA
    Inventors: Takashi Kawasaki, Nobuyuki Yoshino, Hiroshi Murata, Takehiko Sawai, Shinji Saito, Kazunori Urao
  • Publication number: 20140335353
    Abstract: Provided is a viscoelastic body that has small tack, is excellent in handleability, and generates a small amount of outgas even under a high-temperature condition. Also provided is a viscoelastic body that has small tack, is excellent in handleability, and exhibits excellent viscoelasticity in a wide temperature range of from low temperature to high temperature. A viscoelastic body according to one embodiment of the present invention has an outgas amount of 20 mg/cm3 or less when stored at 400° C. for 1 hour. A viscoelastic body according to another embodiment of the present invention has a G? in crimp type viscoelastic spectrum evaluation of 1.0×106 Pa or less in a temperature range of from ?150° C. to 500° C.
    Type: Application
    Filed: October 5, 2012
    Publication date: November 13, 2014
    Applicant: NITTO DENKO CORPORATION
    Inventor: Youhei Maeno
  • Publication number: 20140332056
    Abstract: A device for generating electric power and absorbing heat is revealed. It comprises a substrate, a plurality of solar chips, a broad spectrum light absorbing layer and a light scattering film on the substrate and beside the solar chips, a hot melt adhesive film, and a transparent cover plate.
    Type: Application
    Filed: May 8, 2014
    Publication date: November 13, 2014
    Applicant: SOUTHERN TAIWAN UNIVERSITY OF SCIENCE AND TECHNOLOGY
    Inventors: RUEI-TANG CHEN, JHIH-WUN LAI, RU-SYUAN WU, JYUN-FU SHIH
  • Publication number: 20140332673
    Abstract: A radiometer includes a substrate; a radiation absorber disposed on the substrate to absorb radiation; a thermal member disposed on the substrate to change electrical resistance in response to a change in temperature of the radiometer; and a thermal link to connect the radiometer to a thermal reference, wherein the radiation absorber, the thermal member, or a combination comprising at least one of the foregoing includes a plurality of carbon nanotubes, the carbon nanotubes being mutually aligned with respect to the substrate, and the radiometer being configured to detect optical power.
    Type: Application
    Filed: June 5, 2014
    Publication date: November 13, 2014
    Applicant: NATIONAL INSTITUTE OF STANDARDS AND TECHNOLOGY
    Inventors: JOHN H. LEHMAN, NATHAN TOMLIN
  • Patent number: 8883898
    Abstract: The invention relates to a method for the impregnation of continuous fibers that comprises coating said fibers with a polymer matrix containing: (a) at least one fluorinated polymer grafted with at least one carboxylic polar function and (b) optionally at least one fluorinated nongrafted polymer. The invention also relates to the composite fibers that can be obtained by said method and to the use thereof.
    Type: Grant
    Filed: June 27, 2008
    Date of Patent: November 11, 2014
    Assignee: Arkema France
    Inventors: Gilles Hochstetter, Michael Werth
  • Publication number: 20140329163
    Abstract: A membrane electrode assembly includes a proton exchange membrane, a first electrode and a second electrode. The proton exchange membrane has two opposite surfaces, a first surface and a second surface. The first electrode is located adjacent to the first surface of the proton exchange membrane, and the first electrode includes a first diffusion layer and a first catalyst layer. The second electrode is located adjacent to the second surface of the proton exchange membrane, and the second electrode includes a second diffusion layer and a second catalyst layer. At least one of the first diffusion layer and the second diffusion layer includes a carbon nanotube structure. A fuel cell using the membrane electrode assembly is also provided.
    Type: Application
    Filed: July 24, 2014
    Publication date: November 6, 2014
    Inventors: LI-NA ZHANG, KAI-LI JIANG, SHOU-SHAN FAN
  • Publication number: 20140330100
    Abstract: Carbon nanostructures may be protected and functionalized using a layer-by-layer method whereby functional groups on the carbon nanostructure surface may be further derivatized to incorporate additional functional moieties. Exemplary moieties include redox mediator molecules, crown ethers, catalysts, boric acids, carbohydrates, oligonucleotides, DNA or RNA aptamers, peptide aptamers, proteins such as enzymes and antibodies, quantum dots and nanoparticles, cells, cell organelles, or other cellular components. The density of functional groups or functional moieties on carbon nanostructure surfaces may also be controlled as well as the degree of surface hydrophilicity of the nanostructure.
    Type: Application
    Filed: September 10, 2012
    Publication date: November 6, 2014
    Applicant: NANOSELECT, INC.
    Inventors: Chunhong Li, David J. Ruggieri
  • Patent number: 8877284
    Abstract: A method for making a flexible and clear plastics material article of manufacture having a low electric surface resistance, starting from a plastics material having a higher electric surface resistance, in which the electric surface conductivity of the starting article of manufacture is modified by partially including, into at least a portion of the outer surface of the article, carbon nanotubes. With respect to conventional methods, the inventive method allows to modify the starting plastics material electric surface resistance so as to lower it to values smaller than 102 k?/sq, even starting from articles having a higher resistance of the order of 1013 k?/sq, while preserving the starting clearness and flexibility thereof.
    Type: Grant
    Filed: May 4, 2010
    Date of Patent: November 4, 2014
    Assignee: IVG Colbachini S.p.A.
    Inventors: Gabriele Marcolongo, Moreno Meneghetti
  • Patent number: 8877037
    Abstract: Internally calibrated pH and other analyte sensors based on redox agents provide more accurate results when the redox active reference agent is in a constant chemical environment, yet separated from the solution being analyzed in such a way as to maintain electrical contact with the sample. Room temperature ionic liquids (RTIL) can be used to achieve these results when used as a salt bridge between the reference material and the sample being analyzed. The RTIL provides the constant chemical environment and ionic strength for the redox active material (RAM) and provides an electrolytic layer that limits or eliminates direct chemical interaction with the sample. A broad range of RAMs can be employed in a variety of configurations in such “Analyte Insensitive Electrode” devices.
    Type: Grant
    Filed: March 10, 2010
    Date of Patent: November 4, 2014
    Assignee: Senova Systems, Inc.
    Inventors: Joseph A. Duimstra, Lee Leonard, Gregory G. Wildgoose, Eric Lee
  • Patent number: 8876944
    Abstract: A system for separating fluids of a fluid mixture including a filter element operatively arranged for enabling a first component of a fluid mixture to flow therethrough while impeding flow of at least one other fluid component of the fluid mixture. An additive is configured to improve a first affinity of the filter element for the first component relative to a second affinity of the filter element for the at least one other fluid component of the fluid mixture. A method of separating fluids is also included.
    Type: Grant
    Filed: January 13, 2012
    Date of Patent: November 4, 2014
    Assignee: Baker Hughes Incorporated
    Inventors: Jiaxiang Ren, David P. Gerrard, John C. Welch, James E. Goodson
  • Publication number: 20140321027
    Abstract: Provided herein is a rechargeable power source that can be quickly charged and use for charging mobile and cordless devices. The power source includes an ultracapacitor which comprises a composite structure including carbon nanotubes attached to an oxide layer.
    Type: Application
    Filed: April 29, 2014
    Publication date: October 30, 2014
    Inventors: Cattien V. NGUYEN, YOU LI, DARRELL L. NIEMANN, HOANG NGUYEN LY, PHILIP A. KRAUS
  • Publication number: 20140322610
    Abstract: Compositions, and methods of obtaining them, useful for lithium ion batteries comprising discrete oxidized carbon nanotubes having attached to their surface lithium ion active materials in the form of nanometer sized crystals or layers. The composition can further comprise graphene or oxygenated graphene.
    Type: Application
    Filed: July 8, 2014
    Publication date: October 30, 2014
    Inventors: Clive P. Bosnyak, Kurt W. Swogger
  • Publication number: 20140322608
    Abstract: A method of graphitic petal synthesis includes a step of providing a flexible carbon substrate, such as that including carbon microfibers. The method further includes the step of subjecting flexible carbon substrate to microwave plasma enhanced chemical vapor deposition. The resulting synthesized graphitic petal structure may optionally be coated with PANI.
    Type: Application
    Filed: February 14, 2014
    Publication date: October 30, 2014
    Applicant: PURDUE RESEARCH FOUNDATION
    Inventors: Jonathan Clay Claussen, Anurag Kumar, Timothy S. Fisher, Ronald G. Reifenberger, Guoping Xiong, David Benjamin Jaroch, David Marshall Porterfield
  • Patent number: 8872039
    Abstract: A conductive element includes a base having a first wavy surface, a second wavy surface, and a third wavy surface, a first layer provided on the first wavy surface, and a second layer provided on the second wavy surface. The first layer has a multilayer structure including two or more stacked sublayers, the second layer has a single-layer or multilayer structure including part of the sublayers constituting the first layer, and the first and second layers form a conductive pattern portion. The first, second, and third wavy surfaces satisfy the following relationship: 0?(Am1/?m1)<(Am2/?m2)<(Am3/?m3)?1.8 (Am1: mean amplitude of first wavy surface, Am2: mean amplitude of second wavy surface, Am3: mean amplitude of third wavy surface, ?m1: mean wavelength of first wavy surface, ?m2: mean wavelength of second wavy surface, ?m3: mean wavelength of third wavy surface).
    Type: Grant
    Filed: March 6, 2012
    Date of Patent: October 28, 2014
    Assignee: Sony Corporation
    Inventors: Shunichi Kajiya, Kazuya Hayashibe
  • Patent number: 8871300
    Abstract: A method for making a carbon nanotube based composite is provided. In the method, carriers, solution containing metal ions, and a carboxylic acid solution are mixed to form a mixed solution containing a complex compound. A reducing agent is added into the mixed solution. The metal ions are reduced to metal particles absorbed on the surface of the carriers. The carriers having the metal particles absorbed thereon are purified to obtain the carbon nanotube based composite.
    Type: Grant
    Filed: March 22, 2011
    Date of Patent: October 28, 2014
    Assignees: Tsinghua University, Hon Hai Precision Industry Co., Ltd.
    Inventors: Jian-Wei Guo, Li-Na Zhang, Li Wang, Cheng Wang, Xiang-Ming He, Zhi-Xiang Liu
  • Patent number: 8871295
    Abstract: A method for moving high aspect ratio molecular structures (HARMS), which method comprises applying a force upon a dispersion comprising one or more bundled and individual HARM-structures, wherein the force moves the bundled and/or the individual HARM-structure based on one or more physical features and/or properties for substantially separating the bundled and individual HARM-structures from each other.
    Type: Grant
    Filed: March 7, 2007
    Date of Patent: October 28, 2014
    Assignee: Canatu Oy
    Inventors: David P. Brown, Albert G. Nasibulin, Esko I. Kauppinen, David Gonzalez
  • Patent number: 8871019
    Abstract: Disclosed is a system or method for efficiently manufacturing construction materials using carbon nanomaterials. In one or more embodiments, the method comprises creating a blend of carbon nanomaterials, wherein the blend of the carbon nanomaterials includes at least one of a carbon nanofiber, a carbon nanotube, a graphite nanoparticle and an amorphous carbon. The method also includes dispersing the carbon nanomaterials and adding a plasticizer and a sand to the dispersed mixture within 3 minutes. The method also includes adding at least one of water and a cement binding agent to the dispersed mixture after the plasticizer and the sand have been added.
    Type: Grant
    Filed: November 1, 2011
    Date of Patent: October 28, 2014
    Assignee: King Abdulaziz City Science and Technology
    Inventors: Mohammed A Binhussain, Turki Saud Al-Saud, Siarhei Zhdanok, Andrei Krauklis, Petr Samtsou, Eduard Batsianouski
  • Patent number: 8865109
    Abstract: Systems and methods for the formation of carbon-based nanostructures are generally described. In some embodiments, the nanostructures may be formed on a nanopositor. The nanopositor can comprise, in some embodiments, at least one of metal atoms in a non-zero oxidation state and metalloid atoms in a non-zero oxidation state. For example, the nanopositor may comprise a metal oxide, a metalloid oxide, a metal chalcogenide, a metalloid chalcogenide, and the like. The carbon-based nanostructures may be grown by exposing the nanopositor, in the presence or absence of a growth substrate, to a set of conditions selected to cause formation of carbon-based nanostructures on the nanopositor. In some embodiments, metal or metalloid atoms in a non-zero oxidation state are not reduced to a zero oxidation state during the formation of the carbon-based nanostructures. In some cases, metal or metalloid atoms in a non-zero oxidation state do not form a carbide during the formation of the carbon-based nanostructures.
    Type: Grant
    Filed: August 7, 2012
    Date of Patent: October 21, 2014
    Assignee: Massachusetts Institute of Technology
    Inventors: Stephen A. Steiner, III, Brian L. Wardle
  • Patent number: 8866996
    Abstract: A liquid crystal display including: a liquid crystal display panel including a thin film transistor substrate and a liquid crystal layer disposed on the thin film transistor substrate; a heat generation unit that is configured to heat the liquid crystal layer; a resistance sensing unit that senses a change in a magnitude of resistance of the heat generation unit; a heat generation unit power controller that decreases a magnitude of power applied to the heat generation unit when the magnitude of resistance of the heat generation unit is equal to or greater than a reference magnitude of resistance; and a power supply unit that supplies power of a designated magnitude to the heat generation unit power controller.
    Type: Grant
    Filed: December 15, 2011
    Date of Patent: October 21, 2014
    Assignee: Samsung Electronics Co., Ltd.
    Inventors: Jin Hyun Cho, Young Jai Bai
  • Patent number: 8865604
    Abstract: In one embodiment, a bulk carbon nanotube and metallic composite is provided. The bulk carbon nanotube and metallic composite includes a bulk carbon nanotube material layer including a plurality of carbon nanotubes, and a metal film applied across the bulk carbon nanotube material layer. The metal film penetrates into the interstices between individual carbon nanotubes to reduce an electrical resistance between the plurality of carbon nanotubes.
    Type: Grant
    Filed: September 17, 2012
    Date of Patent: October 21, 2014
    Assignee: The Boeing Company
    Inventor: James Antoni Wasynczuk
  • Patent number: 8865103
    Abstract: The present invention relates to a method for producing carbon micro- and nano-coils using sulfur hexafluoride gas, wherein the carbon micro- and nano-coils are synthesized and grown on a ceramic substrate and sulfur hexafluoride is introduced during the synthesis of the carbon coils to control the geometry of the carbon coils. The invention also discloses a method of producing carbon micro- and nano-coils by synthesizing and growing the carbon coils on a substrate using a chemical vapor deposition system, wherein sulfur hexafluoride (SF6), acetylene (C2H2) and hydrogen (H2) gases are introduced into a chamber during synthesis of the carbon coil, and wherein the sulfur hexafluoride and acetylene gases are introduced alternately for predetermined amounts of time, or any one or more of the flow rate, time or time point of introduction of the sulfur hexafluoride, thereby controlling the shape, length and geometry of the carbon coils.
    Type: Grant
    Filed: October 17, 2012
    Date of Patent: October 21, 2014
    Assignee: Silla University
    Inventor: Sunghoon Kim
  • Publication number: 20140306175
    Abstract: A thin film transistor includes a source electrode, a drain electrode, a semiconducting layer, a first conductive layer, a second conductive layer, an insulating layer and a gate electrode. The drain electrode is spaced apart from the source electrode. The first conductive layer is sandwiched between the source electrode and the semiconductor layer. The second conductive layer is sandwiched between the drain electrode and the semiconductor layer. The gate electrode is insulated from the source electrode, the drain electrode, the first conductive layer, the second conductive layer, and the semiconductor layer by the insulating layer. A first work-function of a first material of the first conductive layer and the second conductive layer is same as a second work-function of a second material of the semiconductor layer.
    Type: Application
    Filed: August 7, 2013
    Publication date: October 16, 2014
    Applicants: HON HAI PRECISION INDUSTRY CO., LTD., TSINGHUA UNIVERSITY
    Inventors: QING-KAI QIAN, QUN-QING LI
  • Publication number: 20140308195
    Abstract: The present invention provides the compound [6]-cycloparaphenylene, cycloparaphenylene intermediates (e.g. [n]macrocycles), and methods for making [n]cycloparaphenylenes and [n]cycloparaphenylene intermediates in quantities not previously available. The cycloparaphenylene compounds and their intermediates can be useful in nanotube preparation and in the preparation of other supramolecular structures.
    Type: Application
    Filed: January 23, 2013
    Publication date: October 16, 2014
    Inventors: Ramesh Jasti, Jianlong Xia
  • Patent number: 8859048
    Abstract: The present invention provides a method for selectively placing carbon nanotubes on a substrate surface by using functionalized carbon nanotubes having an organic compound that is covalently bonded to such carbon nanotubes. The organic compound comprises at least two functional groups, the first of which is capable of forming covalent bonds with carbon nanotubes, and the second of which is capable of selectively bonding metal oxides. Such functionalized carbon nanotubes are contacted with a substrate surface that has at least one portion containing a metal oxide. The second functional group of the organic compound selectively bonds to the metal oxide, so as to selectively place the functionalized carbon nanotubes on the at least one portion of the substrate surface that comprises the metal oxide.
    Type: Grant
    Filed: January 3, 2006
    Date of Patent: October 14, 2014
    Assignee: International Business Machines Corporation
    Inventors: Ali Afzali-Ardakani, Phaedon Avouris, James B. Hannon, Christian Klinke
  • Patent number: 8859399
    Abstract: A method of at least partially releasing an epitaxial layer of a material from a substrate. The method comprises the steps of: forming a patterned sacrificial layer on the substrate such that the substrate is partially exposed and partially covered by the sacrificial layer; growing the epitaxial layer on the patterned sacrificial layer by nano-epitaxial lateral overgrowth such that the epitaxial layer is formed above an intermediate layer comprising the patterned sacrificial layer and said material; and selectively etching the patterned sacrificial layer such that the epitaxial layer is at least partially released from the substrate.
    Type: Grant
    Filed: November 19, 2009
    Date of Patent: October 14, 2014
    Assignee: Agency for Science, Technology and Research
    Inventors: Keyan Zang, Jinghua Teng, Soo Jin Chua