In Specific Atmosphere (other Than Vacuum Or Air) Patents (Class 423/447.7)
  • Patent number: 11605854
    Abstract: Nanoporous carbon-based scaffolds or structures, and specifically carbon aerogels and their manufacture and use thereof. Embodiments include a cathode material within a lithium-air battery, where the cathode is formed of a binder-free, monolithic, polyimide-derived carbon aerogel. The carbon aerogel includes pores that improve the oxygen transport properties of electrolyte solution and improve the formation of lithium peroxide along the surface and/or within the pores of the carbon aerogel. The cathode and underlying carbon aerogel provide optimal properties for use within the lithium-air battery.
    Type: Grant
    Filed: March 21, 2020
    Date of Patent: March 14, 2023
    Assignee: Aspen Aerogels, Inc.
    Inventors: Nicholas A. Zafiropoulos, George L. Gould
  • Patent number: 11247901
    Abstract: In an embodiment, a method includes liberating feed atoms and forming at least one nanotube from the liberated feed atoms. Feed atoms disposed over a front side of a substrate are liberated in response to electromagnetic radiation that propagates from the back side of the substrate, through the substrate, to the front side of the substrate. And, from the liberated feed atoms, at least one nanotube is formed over the front side of the substrate in response to at least one catalyst separate from the substrate and disposed over the front side of the substrate and over the feed atoms.
    Type: Grant
    Filed: February 26, 2020
    Date of Patent: February 15, 2022
    Assignee: Odysseus Technologies, Inc.
    Inventor: Bryan Edward Laubscher
  • Patent number: 10150874
    Abstract: A coated strip or sheet including: a steel strip or sheet, a zinc or zinc alloy coating on the steel strip or sheet, a coating system for inhibiting corrosion, and a top coat, wherein the coating system includes a corrosion inhibitive composition that includes graphene and graphene stacks including 2-20 layers of graphene and a coupling agent including an organofunctional siloxane coupled to graphene and the graphene stacks.
    Type: Grant
    Filed: December 18, 2014
    Date of Patent: December 11, 2018
    Assignee: TATA STEEL UK LIMITED
    Inventors: Henagama Liyanage Mallika Böhm, Sivasambu Böhm, Dammes Hans Van Der Weijde
  • Patent number: 9988849
    Abstract: Wellbore tools may use carbon nanoforests to reduce the access of abrasive particles to compressible sealing elements of joints of the wellbore tool. In some instances, a wellbore tool may include a joint comprising two elements having opposing mating surfaces that define a gap; a compressible sealing element arranged between the opposing mating surfaces and configured to seal a portion of the gap, thereby defining a sealed segment and an unsealed segment of the gap; and at least one carbon nanoforest disposed within at least a portion of the unsealed segment and coupled to at least one of the opposing mating surfaces.
    Type: Grant
    Filed: July 18, 2013
    Date of Patent: June 5, 2018
    Assignee: Halliburton Energy Services, Inc.
    Inventors: Ping Sui, David Duckworth, Gary Weaver
  • Patent number: 9458051
    Abstract: A gas supplying unit supplies a nitrogen gas into a furnace body of a graphite heating furnace in which at least a part of the furnace body is formed with a graphite. An exhausting unit exhausts a gas inside the furnace body to outside the furnace body. A dew-point temperature of the nitrogen gas supplied into the furnace body is equal to or lower than ?80° C. A pressure inside the furnace body is equal to or higher than 140 Pa with respect to an atmospheric pressure outside the furnace body.
    Type: Grant
    Filed: August 27, 2013
    Date of Patent: October 4, 2016
    Assignee: FURUKAWA ELECTRIC CO., LTD.
    Inventor: Tadashi Takahashi
  • Patent number: 9343241
    Abstract: A power storage device with high output is provided, in which the specific surface area is increased while keeping the easy-to-handle particle size of its active material. The power storage device includes a positive electrode including a positive electrode current collector and a positive electrode active material layer, a negative electrode including a negative electrode current collector and a negative electrode active material layer, and an electrolyte. The negative electrode active material layer includes a negative electrode active material having a plurality of graphite particles. Each of the graphite particles consists of graphite layers that are overlapped with each other with a gap of 1 nm to 10 nm therebetween. It is preferable that the grain diameter of the particle be 1 ?m to 50 ?m. Further, the specific surface area of the particles is 20 m2/g to 200 m2/g.
    Type: Grant
    Filed: August 8, 2012
    Date of Patent: May 17, 2016
    Assignee: SEMICONDUCTOR ENERGY LABORATORY CO., LTD.
    Inventors: Junpei Momo, Hiroatsu Todoriki, Kuniharu Nomoto
  • Publication number: 20150125380
    Abstract: In one aspect of the invention, a method for growth of carbon nanotubes includes providing a graphitic composite, decorating the graphitic composite with metal nanostructures to form graphene-contained powders, and heating the graphene-contained powders at a target temperature to form the carbon nanotubes in an argon/hydrogen environment that is devoid of a hydrocarbon source. In one embodiment, the target temperature can be as low as about 150° C. (±5° C.).
    Type: Application
    Filed: November 3, 2014
    Publication date: May 7, 2015
    Inventors: Alexandru S. Biris, Enkeleda Dervishi
  • Publication number: 20150064463
    Abstract: The present invention discloses a graphene fiber and a method of manufacturing the same. The graphene fiber is manufactured by oxidizing graphite, dispersing, spinning, drying and heat treatment, and has a diameter less than 100 ?m, a ratio of length to diameter greater than 10, and a ratio of carbon to oxygen greater than 5. The graphene fiber is formed of a plurality of graphene sheets, which envelop an axis and are coaxially stacked one by one from the axis. The thickness of the graphene sheet is less than 3 nm, and chemical bonds are formed to tightly bond the graphene sheets to exhibit excellent mechanical and thermally/electrically conductive properties. The method of the present invention is implemented by simple steps so as to greatly reduce poisonous chemicals possibly generated in the manufacturing environment, thereby improving the safety of manufacturing and reducing the whole processing time and cost.
    Type: Application
    Filed: November 20, 2013
    Publication date: March 5, 2015
    Applicant: Enerage Inc.
    Inventors: Mark Y. WU, Cheng-Yu HSIEH, Jing-Ru CHEN, Shu-Ling HSIEH
  • Patent number: 8945501
    Abstract: A method for preparing a carbon nanotube, including: a) preparing an LPAN solution, stirring the LPAN solution at between 100 and 200° C. for between 100 and 200 hours to yield a cyclized LPAN solution; b) heating the cyclized LPAN solution at between 200 and 300° C. for between 1 and 10 hours to yield an OPAN; c) grinding, screening, and drying at room temperature the OPAN to yield a thermal oxidative precursor; d) calcining the thermal oxidative precursor at between 400 and 1000° C. for between 1 and 24 h in the presence of inert gas having a flow rate of between 10 and 500 mL/min to yield a carbonated precursor; and e) calcining the carbonated precursor at between 1000 and 1500° C. for between 1 and 10 hours in the presence of the inert gas having a flow rate of between 10 and 500 mL/min to yield a carbon nanotube material.
    Type: Grant
    Filed: September 30, 2013
    Date of Patent: February 3, 2015
    Inventors: Jianhong Liu, Jian Xu, Shuangquan Wu
  • Publication number: 20150018201
    Abstract: The invention is directed to a process for producing carbon nanofibers and/or carbon nanotubes, which process comprises pyrolysing a particulate cellulosic and/or carbohydrate substrate that has been impregnated with a compound of an element or elements, the metal or alloy, respectively, of which is capable of forming carbides, in a substantially oxygen free, volatile silicon compound containing atmosphere, optionally in the presence of a carbon compound.
    Type: Application
    Filed: September 12, 2014
    Publication date: January 15, 2015
    Applicant: BASF CORPROATION
    Inventors: Jacobus Hoekstra, John Wilhelm Jenneskens
  • Publication number: 20140302322
    Abstract: Disclosed are methods for decapping single wall carbon nanotubes and purifying the decapped single wall carbon nanotubes. The disclosed methods include the steps of oxidizing the single wall carbon nanotubes to remove the terminal end cap and subsequently acid washing the single wall carbon nanotubes to remove the catalyst particles. The resulting carbon nanotubes have improved BET surface area and pore volume.
    Type: Application
    Filed: August 28, 2012
    Publication date: October 9, 2014
    Inventors: Ricardo Prada Silvy, Yongqiang Tan
  • Publication number: 20140219908
    Abstract: Methods and systems for producing coiled nanotubes. At least one exemplary method of producing coiled carbon nanotubes of the present disclosure comprises the steps of reacting a carbon feedstock and a catalyst within a reaction vessel to produce a reaction product comprising at least about 5% coiled carbon nanotubes, wherein the carbon feedstock comprises either (i) a mixture of a hydrocarbon and water or (ii) an alcohol, and wherein the catalyst comprises at least one Group VIB or VIIIB transition metal.
    Type: Application
    Filed: August 30, 2011
    Publication date: August 7, 2014
    Inventor: Troy Tomasik
  • Patent number: 8778036
    Abstract: Disclosed are methods for upgrading carbonaceous materials. Also disclosed are apparatuses for upgrading carbonaceous materials. Also disclosed are systems for upgrading carbonaceous materials. Also disclosed are upgraded carbonaceous materials.
    Type: Grant
    Filed: August 22, 2011
    Date of Patent: July 15, 2014
    Assignee: Skye Energy Holdings, Inc.
    Inventor: David R. Shaffer
  • Patent number: 8709122
    Abstract: The invention is directed to a method for producing an oxygenated biochar material possessing a cation-exchanging property, wherein a biochar source is reacted with one or more oxygenating compounds in such a manner that the biochar source homogeneously acquires oxygen-containing cation-exchanging groups in an incomplete combustion process. The invention is also directed to oxygenated biochar compositions and soil formulations containing the oxygenated biochar material.
    Type: Grant
    Filed: February 27, 2013
    Date of Patent: April 29, 2014
    Assignee: UT-Battelle, LLC
    Inventors: James W. Lee, Archibald C. Buchanan, III, Barbara R. Evans, Michelle K. Kidder
  • Publication number: 20140037533
    Abstract: A high modulus graphite fiber with a tensile modulus of 270˜650 GPa and a plurality of crystal structures with a thickness (Lc) of 20˜70 angstroms is disclosed. Carbon fiber is used as a raw material, and a microwave focusing method is used to perform an ultra quick high temperature graphitization process to increase the temperature of the carbon fiber at a heating speed of 10˜100° C. per minute to a graphitization temperature of 1400˜3000° C., and then to perform a quick graphitization process for 0.5˜10 minutes to form the high modulus graphite fiber.
    Type: Application
    Filed: July 31, 2012
    Publication date: February 6, 2014
    Inventor: CHIH-YUNG WANG
  • Publication number: 20140027678
    Abstract: A method for preparing a carbon nanotube, including: a) preparing an LPAN solution, stirring the LPAN solution at between 100 and 200° C. for between 100 and 200 hours to yield a cyclized LPAN solution; b) heating the cyclized LPAN solution at between 200 and 300° C. for between 1 and 10 hours to yield an OPAN; c) grinding, screening, and drying at room temperature the OPAN to yield a thermal oxidative precursor; d) calcining the thermal oxidative precursor at between 400 and 1000° C. for between 1 and 24 h in the presence of inert gas having a flow rate of between 10 and 500 mL/min to yield a carbonated precursor; and e) calcining the carbonated precursor at between 1000 and 1500° C. for between 1 and 10 hours in the presence of the inert gas having a flow rate of between 10 and 500 mL/min to yield a carbon nanotube material.
    Type: Application
    Filed: September 30, 2013
    Publication date: January 30, 2014
    Inventors: Jianhong LIU, Jian XU, Shuangquan WU
  • Patent number: 8632744
    Abstract: A process of producing a composite having carbon nanotubes is described where the carbon nanotube formation process of producing carbon nanotubes includes controlled heating of plant fiber materials in an oxygen-limited atmosphere. The plant fiber materials may be heated either cyclically or by rapid heating to produce the carbon nanotubes.
    Type: Grant
    Filed: June 29, 2011
    Date of Patent: January 21, 2014
    Assignee: University of Maine System Board of Trustees
    Inventors: Barry S. Goodell, Xinfeng Xie, Yuhui Qian, Dajie Zhang, Michael L. Peterson, Jody L. Jellison
  • Patent number: 8628748
    Abstract: A purification method for a carbon material containing carbon nanotubes is provided, which satisfies the following requirements: The method should prevent carbon nanotubes from being damaged, broken or flocculated; the method should be capable of removing the catalyst metal and carbon components other than the carbon nanotubes; and the method should be applicable to not only multi-walled carbon nanotubes but also single-walled carbon nanotubes which will undergo significant structural changes when heated to 1400° C. or higher temperatures. The method is characterized by including a carbon material preparation process for preparing a carbon material containing carbon nanotubes by an arc discharge method, using an anode made of a material containing at least carbon and a catalyst metal; and a halogen treatment process for bringing the carbon material into contact with a gas containing a halogen and/or halogen compound.
    Type: Grant
    Filed: March 7, 2008
    Date of Patent: January 14, 2014
    Assignee: Toyo Tanso Co., Ltd.
    Inventors: Yuji Takimoto, Naoto Ohta, Tetsuro Tojo
  • Publication number: 20140011007
    Abstract: Syntheses of carbon nanotubes (CNT) are disclosed. The syntheses can take place on a thermally oxidized silicon surface placed inside a furnace prior to a reaction. The setup can have many variables that could affect the resulting CNT arrays, including flow rate and composition of carrier gas, flow rate and composition of precursor solution, and temperature. By varying such variables the density of the resulting CNT arrays can be controlled.
    Type: Application
    Filed: June 7, 2012
    Publication date: January 9, 2014
    Inventors: Jordan R. RANEY, Chiara DARAIO
  • Publication number: 20130333562
    Abstract: Carbon molecular sieve membranes having desirable selectivity for ethylene/ethane separations are prepared from a 3,3?,4,4?-benzophenonetetracarboxylic acid dianhydride 5(6)-amino-1-(4?-aminophenyl)-1,3,3-trimethylindane 4,4-bismaleimidodiphenyl-methane (BTDA-DAPI) precursor solution that is then formed into films or hollow fibers which are pyrolyzed under vacuum or an inert atmosphere to form carbon molecular sieve membranes. Pyrolysis condition variables, including ramp rate, thermal soak time and temperature, are used to optimize the membrane's separation performance.
    Type: Application
    Filed: February 28, 2012
    Publication date: December 19, 2013
    Applicant: Georgia Tech Research Corporation
    Inventors: William J. Koros, Meha Rungta, Liren Xu
  • Patent number: 8580222
    Abstract: A single step process for degrading plastic waste by converting the plastic waste into carbonaceous products via thermal decomposition of the plastic waste by placing the plastic waste into a reactor, heating the plastic waste under an inert or air atmosphere until the temperature of about 700° C. is achieved, allowing the reactor to cool down, and recovering the resulting decomposition products therefrom. The decomposition products that this process yields are carbonaceous materials, and more specifically carbon nanotubes having a partially filled core (encapsulated) adjacent to one end of the nanotube. Additionally, in the presence of a transition metal compound, this thermal decomposition process produces multi-walled carbon nanotubes.
    Type: Grant
    Filed: March 16, 2012
    Date of Patent: November 12, 2013
    Assignee: Uchicago Argonne, LLC
    Inventors: Vilas G. Pol, Pappannan Thiyagarajan
  • Patent number: 8574533
    Abstract: A negative electrode material for non-aqueous electrolyte secondary batteries, comprises: a carbon material having a sphericity of at least 0.8, and exhibiting an average (002) interlayer spacing d002 of 0.365-0.400 nm, a crystallite size in a c-axis direction Lc(002) of 1.0-3.0 nm, as measured by X-ray diffractometry, a hydrogen-to-carbon atomic ratio (H/C) of at most 0.1 as measured by elementary analysis, and an average particle size Dv50 of 1-20 ?m. The negative electrode material is spherical and exhibits excellent performances including high output performance and durability.
    Type: Grant
    Filed: March 25, 2005
    Date of Patent: November 5, 2013
    Assignee: Kureha Corporation
    Inventors: Naohiro Sonobe, Hiroshi Ohta, Takahiro Akita
  • Patent number: 8562937
    Abstract: A method and apparatus for manufacture of carbon nanotubes, in which a substrate is contacted with a hydrocarbonaceous feedstock containing a catalytically effective metal to deposit the feedstock on the substrate, followed by oxidation of the deposited feedstock to remove hydrocarbonaceous and carbonaceous components from the substrate, while retaining the catalytically effective metal thereon, and contacting of the substrate having retained catalytically effective metal thereon with a carbon source material to grow carbon nanotubes on the substrate. The manufacture can be carried out with a petroleum feedstock such as an oil refining atmospheric tower residue, to produce carbon nanotubes in high volume at low cost. Also disclosed is a composite including porous material having single-walled carbon nanotubes in pores thereof.
    Type: Grant
    Filed: December 19, 2006
    Date of Patent: October 22, 2013
    Assignee: Nantero Inc.
    Inventors: J. Donald Carruthers, Xueping Xu, Luping Wang
  • Patent number: 8562938
    Abstract: The present invention relates to a composite sintering materials using a carbon nanotube (including carbide nano particles, hereinafter the same) and a manufacturing method thereof, the method comprises the steps of: combining or generating carbon nanotubes in metal powders, a compacted product, or a sintered product; growing and alloying the carbon nanotubes by compacting or sintering the metal powders, the compacted product, or the sintered product; and strengthening the mechanical characteristics by repeatedly performing the sintering process and the combining process or the generating process of the carbon nanotubes.
    Type: Grant
    Filed: January 5, 2012
    Date of Patent: October 22, 2013
    Inventors: Sang-chul Ahn, Sun-hwa Yang, Hyeung-eun Ahn
  • Publication number: 20130222975
    Abstract: The present invention relates to a method of preparing purified carbon nanotubes (CNTs) comprising mixing starting CNTs with an organic solvent in the presence of sonication; substantially removing the organic solvent to obtain a CNT composition; and heating the CNT composition at 200° C. or higher to obtain the purified carbon nanotubes. The present invention further relates to the purified CNTs and cohesive CNT assemblies prepared from the method described herein, and articles (e.g. capacitor, energy storage device or capacitive deionization device) comprising the purified CNTs.
    Type: Application
    Filed: February 29, 2012
    Publication date: August 29, 2013
    Inventors: Yongan Yan, Nissim Ray
  • Patent number: 8506922
    Abstract: The present invention relates to a composite sintering materials using a carbon nanotube (including carbide nano particles, hereinafter the same) and a manufacturing method thereof, the method comprises the steps of: combining or generating carbon nanotubes in metal powders, a compacted product, or a sintered product; growing and alloying the carbon nanotubes by compacting or sintering the metal powders, the compacted product, or the sintered product; and strengthening the mechanical characteristics by repeatedly performing the sintering process and the combining process or the generating process of the carbon nanotubes.
    Type: Grant
    Filed: January 5, 2012
    Date of Patent: August 13, 2013
    Assignee: C & Tech Co., Ltd.
    Inventors: Sang-chul Ahn, Sun-hwa Yang, Hyeung-eun Ahn
  • Patent number: 8486179
    Abstract: The invention concerns carbon molecular sieve membranes (“CMS membranes”), and more particularly the use of such membranes in gas separation. In particular, the present disclosure concerns an advantageous method for producing CMS membranes with desired selectivity and permeability properties. By controlling and selecting the oxygen concentration in the pyrolysis atmosphere used to produce CMS membranes, membrane selectivity and permeability can be adjusted. Additionally, oxygen concentration can be used in conjunction with pyrolysis temperature to further produce tuned or optimized CMS membranes.
    Type: Grant
    Filed: June 17, 2010
    Date of Patent: July 16, 2013
    Assignees: Georgia Tech Research Corporation, Shell Oil Company
    Inventors: Mayumi Kiyono, Paul Jason Williams, William John Koros
  • Patent number: 8450605
    Abstract: The present disclosure relates to a method for making a conjugated polymer. In the method, polyacrylonitrile, a solvent, and a catalyst are provided. The polyacrylonitrile is dissolved in the solvent to form a polyacrylonitrile solution. The catalyst is uniformly dispersed into the polyacrylonitrile solution. The polyacrylonitrile solution with the catalyst is heated to induce a cyclizing reaction of the polyacrylonitrile, thereby forming a conjugated polymer solution with the conjugated polymer dissolved therein.
    Type: Grant
    Filed: March 18, 2011
    Date of Patent: May 28, 2013
    Assignees: Tsinghua University, Hon Hai Precision Industry Co., Ltd.
    Inventors: Xiang-Ming He, Li Wang, Wei-Hua Pu, Wen-Ting Sun, Jian-Jun Li
  • Patent number: 8398738
    Abstract: The invention is directed to a method for producing an oxygenated biochar material possessing a cation-exchanging property, wherein a biochar source is reacted with one or more oxygenating compounds in such a manner that the biochar source homogeneously acquires oxygen-containing cation-exchanging groups in an incomplete combustion process. The invention is also directed to oxygenated biochar compositions and soil formulations containing the oxygenated biochar material.
    Type: Grant
    Filed: January 13, 2010
    Date of Patent: March 19, 2013
    Assignee: UT-Battelle, LLC
    Inventors: James W. Lee, Archibald C. Buchanan, III, Barbara R. Evans, Michelle K. Kidder
  • Publication number: 20130028830
    Abstract: A method of increasing the density of carbon nanotube fibres or films containing carbon nanotubes to at least 50% w/w, said method including the steps of exposing the fibre or film to suitable density enhancing agent.
    Type: Application
    Filed: September 5, 2012
    Publication date: January 31, 2013
    Inventors: Martin Pick, Alan Hardwick Windle, Jose Vilatela Garcia, Krzysztof Kazimiers Koziol
  • Publication number: 20120308471
    Abstract: Described is a method for the selective etching of single walled carbon nanotubes with CO2 where nanotubes of small diameters are removed.
    Type: Application
    Filed: June 29, 2009
    Publication date: December 6, 2012
    Applicant: E.I. DU PONT DE NEMOURS AND COMPANY
    Inventors: Salah Boussaad, Frank M. Pellicone, Joseph Menezes
  • Patent number: 8273829
    Abstract: The present disclosure relates to a method for making a conjugated polymer. In the method, polyacrylonitrile, a solvent, and a catalyst are provided. The polyacrylonitrile is dissolved in the solvent to form a polyacrylonitrile solution. The catalyst is uniformly dispersed into the polyacrylonitrile solution. The polyacrylonitrile solution with the catalyst is heated to induce a cyclizing reaction of the polyacrylonitrile, thereby forming a conjugated polymer solution with conjugated polymer.
    Type: Grant
    Filed: March 18, 2011
    Date of Patent: September 25, 2012
    Assignees: Tsinghua University, Hon Hai Precision Industry Co., Ltd.
    Inventors: Xiang-Ming He, Li Wang, Wei-Hua Pu, Wen-Ting Sun, Jian-Jun Li
  • Patent number: 8227685
    Abstract: A graphene sheet including an intercalation compound and 2 to about 300 unit graphene layers, wherein each of the unit graphene layers includes a polycyclic aromatic molecule in which a plurality of carbon atoms in the polycyclic aromatic molecule are covalently bonded to each other; and wherein the intercalation compound is interposed between the unit graphene layers.
    Type: Grant
    Filed: February 17, 2010
    Date of Patent: July 24, 2012
    Assignee: Samsung Electronics Co., Ltd.
    Inventor: Jae-young Choi
  • Publication number: 20120181486
    Abstract: A single step process for degrading plastic waste by converting the plastic waste into carbonaceous products via thermal decomposition of the plastic waste by placing the plastic waste into a reactor, heating the plastic waste under an inert or air atmosphere until the temperature of about 700° C. is achieved, allowing the reactor to cool down, and recovering the resulting decomposition products therefrom. The decomposition products that this process yields are carbonaceous materials, and more specifically carbon nanotubes having a partially filled core (encapsulated) adjacent to one end of the nanotube. Additionally, in the presence of a transition metal compound, this thermal decomposition process produces multi-walled carbon nanotubes.
    Type: Application
    Filed: March 16, 2012
    Publication date: July 19, 2012
    Applicant: UCHICAGO ARGONNE, LLC
    Inventors: Vilas G. Pol, Pappannan Thiyagarajan
  • Patent number: 8216541
    Abstract: The present invention provides a process for producing nano graphene platelets (NGPs) that are both dispersible and electrically conducting. The process comprises: (a) preparing a pristine NGP material from a graphitic material; and (b) subjecting the pristine NGP material to an oxidation treatment to obtain the dispersible NGP material, wherein the NGP material has an oxygen content no greater than 25% by weight. Conductive NGPs can find applications in transparent electrodes for solar cells or flat panel displays, additives for battery and supercapacitor electrodes, conductive nanocomposite for electromagnetic wave interference (EMI) shielding and static charge dissipation, etc.
    Type: Grant
    Filed: September 3, 2008
    Date of Patent: July 10, 2012
    Assignee: Nanotek Instruments, Inc.
    Inventors: Bor Z. Jang, Aruna Zhamu
  • Publication number: 20120157298
    Abstract: The invention is directed to a process for producing carbon nanofibres and/or carbon nanotubes, which process comprises pyrolysing a particulate cellulosic and/or carbohydrate substrate that has been impregnated with a compound of an element or elements, the metal or alloy, respectively, of which is capable of forming carbides, in a substantially oxygen free, volatile silicon compound containing atmosphere, optionally in the presence of a carbon compound.
    Type: Application
    Filed: March 1, 2010
    Publication date: June 21, 2012
    Inventors: J. Hoekstra, John Wilhelm Geus, L. W. Jenneskens
  • Patent number: 8124043
    Abstract: The present teachings are directed toward a matrix containing nanosized metal components and carbon nanotubes, with the carbon nanotubes being produced in situ by the nanosized metal components upon the contacting of the nanosized metal components with a carbon source under conditions sufficient to produce the carbon nanotubes. Also disclosed are methods of producing the matrix containing the nanosized metal components and carbon nanotubes.
    Type: Grant
    Filed: March 16, 2007
    Date of Patent: February 28, 2012
    Assignee: Honda Motor Co., Ltd.
    Inventors: Avetik Harutyunyan, Elena Mora
  • Patent number: 8119095
    Abstract: The present invention relates to a composite sintering materials using a carbon nanotube (including carbide nano particles, hereinafter the same) and a manufacturing method thereof, the method comprises the steps of: combining or generating carbon nanotubes in metal powers, a compacted product, or a sintered product; growing and alloying the carbon nanotubes by compacting or sintering the metal powers, the compacted product, or the sintered product; and strengthening the mechanical characteristics by repeatedly performing the sintering process and the combining process or the generating process of the carbon nanotubes.
    Type: Grant
    Filed: September 7, 2007
    Date of Patent: February 21, 2012
    Assignee: C & Tech Co., Ltd.
    Inventors: Sang-chul Ahn, Sun-hwa Yang, Hyeung-eun Ahn
  • Patent number: 8110170
    Abstract: Provided are a conductive polymer-carbon nanotube composite including a carbon nanotube and a conductive polymer filled therein, and a method of manufacturing the same. The conductive polymer-carbon nanotube composite where a conductive polymer is filled in a carbon nanotube is manufactured by introducing a monomer of the conductive polymer into the carbon nanotube using a supercritical fluid technique and polymerizing the monomer. The conductive polymer-carbon nanotube composite is a novel nano-structure material which can overcome limitations that conventional materials may have, and thus can be applied to various applications such as sensors, electrode materials, nanoelectronic materials, etc.
    Type: Grant
    Filed: September 21, 2007
    Date of Patent: February 7, 2012
    Assignee: SNU R&DB Foundation
    Inventors: Yung-Woo Park, Johannes Steinmetz
  • Patent number: 8043693
    Abstract: A flame-resistant polymer excels in moldability capable of providing a flame-resistant molded item of novel configuration; a relevant flame-resistant polymer solution; a process for easily producing them; a carbon molding from the flame-resistant polymer; and a process for easily producing the same. A flame-resistant polymer is modified with an amine compound. Further, a flame-resistant polymer solution has the polymer dissolved in a polar organic solvent. A flame-resistant molding whose part or entirety is constituted of the flame-resistant polymer modified with an amine compound. A carbon molding was part or entirety constituted of a carbon component resulting from carbonization of the flame-resistant polymer modified with an amine compound. From the solution containing the flame-resistant polymer, moldings of various configurations can be obtained through further work.
    Type: Grant
    Filed: December 9, 2009
    Date of Patent: October 25, 2011
    Assignee: Toray Industries, Inc.
    Inventors: Tetsunori Higuchi, Katsumi Yamasaki, Koichi Yamaoka, Tomihiro Ishida
  • Publication number: 20110198559
    Abstract: A method is provided for growth of carbon nanotube (CNT) synthesis at a low temperature. The method includes preparing a catalyst by placing the catalyst between two metal layers of high chemical potential on a substrate, depositing such placed catalyst on a surface of a wafer, and reactivating the catalyst in a high vacuum at a room temperature in a catalyst preparation chamber to prevent a deactivation of the catalyst. The method also includes growing carbon nanotubes on the substrate in the high vacuum in a CNT growth chamber after preparing the catalyst.
    Type: Application
    Filed: April 25, 2011
    Publication date: August 18, 2011
    Applicant: STMICROELECTRONICS ASIA PACIFIC PTE LTD
    Inventors: Shanzhong Wang, Mui Hoon Nai, Zhonglin Miao
  • Patent number: 7993620
    Abstract: A system that receives nanomaterials, forms nanofibrous materials therefrom, and collects these nanofibrous materials for subsequent applications. The system is coupled to a chamber that generates nanomaterials, typically carbon nanotubes produced from chemical vapor deposition, and includes a mechanism for spinning the nanotubes into yarns or tows. Alternatively, the system includes a mechanism for forming non-woven sheets from the nanotubes. The system also includes components for collecting the formed nanofibrous materials. Methods for forming and collecting the nanofibrous materials are also provided.
    Type: Grant
    Filed: July 17, 2006
    Date of Patent: August 9, 2011
    Assignee: Nanocomp Technologies, Inc.
    Inventors: David S. Lashmore, Joseph J. Brown, Jared K. Chaffee, Bruce Resnicoff, Peter Antoinette
  • Patent number: 7981396
    Abstract: Methods, processes, and apparatuses for the large scale synthesis of carbon nanostructures are provided. Metal catalysts having small diameter and narrow distribution of particle sizes are prepared and continuously injected as aerosols into a reactor. The metal catalysts are supported on supports that are substantially free of carbon, and the reactor is configured to control the flow of the gases such that the reaction time and contact of the reactants with the reactor walls can be controlled. Single-walled carbon nanotubes can be synthesized at a large scale and with high yields.
    Type: Grant
    Filed: December 3, 2003
    Date of Patent: July 19, 2011
    Assignee: Honda Motor Co., Ltd.
    Inventor: Avetik Harutyunyan
  • Patent number: 7976893
    Abstract: A heavily boron-doped diamond thin film having superconductivity is deposited by chemical vapor deposition using gas mixture of at least carbon compound and boron compound, including hydrogen. An advantage of the diamond thin film deposited by the chemical vapor deposition is that it can contain boron at high concentration, especially in (111) oriented films. The boron-doped diamond thin film deposited by the chemical vapor deposition shows the characteristics of typical type II superconductor.
    Type: Grant
    Filed: May 20, 2005
    Date of Patent: July 12, 2011
    Assignee: National Institute for Materials Science
    Inventors: Yoshihiko Takano, Masanori Nagao, Minoru Tachiki, Hiroshi Kawarada, Hitoshi Umezawa, Kensaku Kobayashi
  • Publication number: 20110073010
    Abstract: Processes are provided for removing metal-based catalyst residues from carbon nanotubes by contacting the carbon nanotubes with an active metal agent and carbon monoxide.
    Type: Application
    Filed: December 2, 2010
    Publication date: March 31, 2011
    Applicant: E. I. DU PONT DE NEMOURS AND COMPANY
    Inventor: Steven Dale Ittel
  • Publication number: 20110033367
    Abstract: A process for the production of carbon nanostructures by an oxidation-reduction method is described. The growth of carbon nanorods, nanotubes, and nanoclusters on planar and non planar substrates, and free standing is demonstrated. In one embodiment a reactive gas is generated in situ and reacted with a carbide while the byproducts are removed, thereby adjusting the equilibrium to favor the formation of the carbon nanostructured product.
    Type: Application
    Filed: April 7, 2009
    Publication date: February 10, 2011
    Inventors: Bill L. Riehl, Jim R. Riehl, Lee R. Riehl
  • Patent number: 7879308
    Abstract: A multi-wall carbon nanotube field emitter and method of producing the same is disclosed. The multi-wall carbon nanotube field emitter comprises a nanotube having a diameter between approximately 1 nanometer and approximately 100 nanometers with an integrally attached outer layer of graphitic material that is approximately 1 micrometer to approximately 10 micrometers in diameter attached to an etched tip of a wire. The tip of the wire is etched to form a tip and a slot is fabricated in the tip for alignment and attachment of the carbon nanotube. A focus ion beam is used to weld the nanotube to the tungsten tip for electron field emission applications.
    Type: Grant
    Filed: April 4, 2005
    Date of Patent: February 1, 2011
    Assignee: University of Central Florida Research Foundation, Inc.
    Inventors: Leo Chow, Guangyu Chai
  • Publication number: 20110008240
    Abstract: A chemical vapor deposition (CVD) device is equipped with a reaction vessel tube and a small vessel substrate in an electric furnace and with a heater and a thermocouple at the periphery thereof. A gas supply portion is connected to one of the reaction vessel tubes, and a pressure adjusting valve and an exhaust portion are connected to the other of the reaction vessel tubes, controlled by a control section such that the exhaust portion vacuum-exhausts the reaction vessel tube interior, the heater sublimates the small vessel substrate interior by rising temperature of catalyst iron chloride, and the gas supply portion bleeds an acetylene gas into the reaction vessel tube. As a result, iron chloride and the acetylene gas vapor-phase-react, a silicon oxide surface layer is formed to form growth nucleus of cabon nanotubes, and carbon nanotubes are grown so as to be oriented vertically.
    Type: Application
    Filed: February 24, 2009
    Publication date: January 13, 2011
    Applicant: National University Corporation Shizuoka University
    Inventors: Yoku Inoue, Morihiro Okada
  • Publication number: 20100296996
    Abstract: A method for manufacturing carbon nanotubes includes the steps of: preparing metal-containing-nanofibers which include nanofibers made of organic polymer and metal which possesses a catalytic function in forming carbon nanotubes; and forming carbon nanotubes which contain metal therein by using the nanofibers as a carbon source, wherein the carbon nanotubes are formed by putting the metal-containing-nanofibers into a heating vessel which has a substance capable of converting electromagnetic energy into heat, and by heating the metal-containing-nanofibers using heat which is generated by the heating vessel when electromagnetic energy is applied to the heating vessel.
    Type: Application
    Filed: August 3, 2009
    Publication date: November 25, 2010
    Applicants: SHINSHU UNIVERSITY, FINETEX ENE, INC.
    Inventors: Kazuchika OHTA, Ick-Soo KIM, Byoung-Suhk KIM, Jongchul PARK
  • Patent number: 7799307
    Abstract: A method of growing single-walled carbon nanotubes. The method may include supplying at least one of an oxidant and an etchant into a vacuum chamber and supplying a source gas into the vacuum chamber to grow carbon nanotubes on a substrate in an oxidant or an etchant atmosphere. The carbon nanotubes may be grown in an H2O plasma atmosphere. The carbon nanotubes may be grown at a temperature less than 500° C.
    Type: Grant
    Filed: March 31, 2006
    Date of Patent: September 21, 2010
    Assignee: Samsung Electronics Co., Ltd.
    Inventors: Eun-Ju Bae, Yo-Sep Min, Wan-Jun Park