Cobalt (co) Or Nickel (ni) Containing Patents (Class 423/594.19)
  • Patent number: 8007757
    Abstract: A method of synthesizing nanostructures. In one embodiment, the method includes the step of heating a reaction mixture at an elevated temperature, T, for a period of time effective to allow the growth of desired nanostructures. The reaction mixture contains an amount, P, of a carboxylate salt and an amount, L, of a fatty acid ligand, defining a molar ratio of the fatty acid ligand to the carboxylate salt, ?=L/P, and a hydrocarbon solvent. The reaction mixture is characterizable with a critical ligand protection, ?, associating with the chemical structure of the carboxylate salt such that when ?<?, the reaction mixture is in a limited ligand protection (LLP) domain, and when ?>?, the reaction mixture is in a sufficient ligand protection (SLP) domain.
    Type: Grant
    Filed: May 17, 2007
    Date of Patent: August 30, 2011
    Assignee: The Board of Trustees of the University of Arkansas
    Inventors: Xiaogang Peng, Arun Narayanaswamy, Narayan Pradhan
  • Publication number: 20110201847
    Abstract: A method for the production of nanocrystalline nickel oxides as well as the nickel oxides produced by the method according to the invention and the use thereof as catalyst following reduction to nickel metal, in particular for hydrogenation reactions.
    Type: Application
    Filed: May 29, 2009
    Publication date: August 18, 2011
    Inventors: Hans-Jörg Wölk, Alfred Hagemeyer, Frank Grossmann, Silvia Neumann
  • Patent number: 7998452
    Abstract: A method of preparation of spherical tricobalt tetraoxide, including at least oxidizing a bivalent cobalt salt in a wet environment and in the presence of a precipitant, a complexing agent, and an oxidant to yield spherical cobalt oxyhydroxide.cobalt hydroxide according to the following equation Co2++3OH?+O?CoOOH.Co(OH)2; oxidizing the spherical hydroxy cobalt oxyhydroxide.cobalt hydroxide to yield spherical tricobalt tetraoxide according to the following equation 6CoOOH.Co(OH)2+O?4Co3O4+9H2O; and roasting the spherical tricobalt tetraoxide at low or intermediate temperature to yield a black powder. The method is easily practiced and suitable for mass production, and the resultant spherical tricobalt tetraoxide has stable structure, reliable properties, and high activity.
    Type: Grant
    Filed: November 9, 2009
    Date of Patent: August 16, 2011
    Assignee: Ningbo Jinhe New Materials Co., Ltd.
    Inventor: Jinhua He
  • Publication number: 20110195142
    Abstract: A heat-reactive resist material of the invention is characterized in that the boiling point of the fluoride of the element is 200° C. or more. By this means, it is possible to achieve the heat-reactive resist material having high resistance to dry etching using fluorocarbons to form a pattern with the deep groove depth.
    Type: Application
    Filed: October 13, 2009
    Publication date: August 11, 2011
    Applicant: ASAHI KASEI KABUSHIKI KAISHA
    Inventors: Yoshimichi Mitamura, Kazuyuki Furuya, Norikiyo Nakagawa, Masatoshi Maeda
  • Patent number: 7993618
    Abstract: A method for making the metal oxide includes the following steps: mixing a metal nitrate with a solvent of octadecyl amine, and achieving a mixture; agitating and reacting the mixture at a reaction temperature for a reaction period; cooling the mixture to a cooling temperature, and achieving a deposit; and washing the deposit with an organic solvent, drying the deposit at a drying temperature and achieving a metal oxide nanocrystal. The present method for making a metal oxide nanocrystal is economical and timesaving, and has a low toxicity associated therewith. Thus, the method is suitable for industrial mass production. The metal oxide nanocrystal material made by the present method has a readily controllable size, a narrow size distribution, and good crystallinity.
    Type: Grant
    Filed: November 2, 2007
    Date of Patent: August 9, 2011
    Assignees: Tsinghua University, Hon Hai Precision Industry Co., Ltd.
    Inventors: Ya-Dong Li, Ding-Sheng Wang
  • Publication number: 20110166395
    Abstract: The present invention relates to a method for the production of nanocrystalline nickel oxides as well as the nickel oxides produced by the method according to the invention and the use thereof as catalyst following reduction to nickel metal, in particular for hydrogenation reactions.
    Type: Application
    Filed: May 29, 2009
    Publication date: July 7, 2011
    Inventors: Hans-Jörg Wölk, Alfred Hagemeyer, Frank Grossmann, Silvia Neumann, Gerhard Mestl
  • Publication number: 20110147679
    Abstract: The present invention provides a method for recovering an oxide-containing battery material from a waste battery material. The recovery method includes steps (1) and (2) in this order: (1) a step of immersing a base taken out of the waste battery material and the base having an oxide-containing battery material, in a solvent that does not substantially dissolve the oxide, and stripping the battery material from the base thereby, and (2) a step of separating the battery material from the base.
    Type: Application
    Filed: June 30, 2009
    Publication date: June 23, 2011
    Applicant: SUMITOMO CHEMICAL COMPANY, LIMITED
    Inventors: Hiroshi Inukai, Toshinori Isobe, Kenji Nakane
  • Publication number: 20110143088
    Abstract: Method for preparing a NiO nanosheet structure possessing (111) crystallographic planes as a primary surface with hexagonal holes, comprising the following steps: a) preparing a methanol solution of a nickel salt selected from the group consisting of nickel nitrate, nickel sulphate, nickel chlorate, nickel acetate, and nickel phosphate or a mixture thereof; b) adding benzyl alcohol (BZ), optionally substituted with alkyl, nitro, halo or amino, or a mixture thereof and urea to the solution of (a) in a ratio of Ni to BZ or substituted BZ of at least 1; c) solvent removal and calcination in air of the mixture, plate-like NiO nanosheet precursors therefore, NiO nanosheet structures obtainable by that method as well as various novel uses thereof.
    Type: Application
    Filed: March 10, 2008
    Publication date: June 16, 2011
    Applicant: Jacobs University Bremen gGmbH
    Inventors: Ryan Richards, Juncheng Hu
  • Publication number: 20110108116
    Abstract: A p-type NiO conducting film for an organic solar cell, a preparation method thereof, and an organic solar cell using the same and having enhanced power conversion efficiency, are provided, wherein the NiO conducting film is fabricated by vacuum sputtering in which nickel or nickel oxide is used as a target material, and argon, oxygen or the mixed gas of the argon and the oxygen is supplied. The p-type NiO conducting film may be easily prepared by vacuum sputtering, and since a n-type conducting film is prepared by simply coating sol-phase precursor solution, the NiO conducting film and the organic solar cells having the NiO conducting film in the order of the NiO conducting film, a photoactive layer, and a n-type conducting film, have enhanced electric energy conversion. As a result, the provided disclosure is useful particularly when applied in organic solar cells and organic light emitting devices.
    Type: Application
    Filed: October 1, 2010
    Publication date: May 12, 2011
    Applicant: KOREA INSTITUTE OF MACHINERY AND MATERIALS
    Inventors: Jae-Wook Kang, Dong Ho Kim, Sun Young Park, Do-Geun Kim, Jong Kuk Kim
  • Publication number: 20110070149
    Abstract: The present invention describes a thin layer fixed bed reactor intended for chemical treatments, in particular reduction of a Fischer-Tropsch synthesis catalyst. The reactor is designed in the form of similar, compact modules and operates with a ratio of linear pressure drop to outlet pressure which falls within certain limits.
    Type: Application
    Filed: September 15, 2008
    Publication date: March 24, 2011
    Applicants: ENI S.P.A., IFP
    Inventors: Damien Douziech, Gilles Causse, Eric Caprani, Jean Christophe Viguie, Jean Marc Schweitzer, Ann Forret
  • Publication number: 20110052896
    Abstract: The disclosure relates to metal oxide materials with varied nanostructural morphologies. More specifically, the disclosure relates to zinc oxide and cobalt oxide nanostructures with varied morphologies. The disclosure further relates to methods of making such metal oxide nanostructures.
    Type: Application
    Filed: August 27, 2009
    Publication date: March 3, 2011
    Inventor: Shrisudersan Jayaraman
  • Patent number: 7892447
    Abstract: Nanoplatelet forms of metal hydroxide and metal oxide are provided, as well as methods for preparing same. The nanoplatelets are suitable for use as fire retardants and as agents for chemical or biological decontamination.
    Type: Grant
    Filed: August 9, 2007
    Date of Patent: February 22, 2011
    Assignee: Aqua Resources Corporation
    Inventor: Orville Lee Maddan
  • Publication number: 20110033368
    Abstract: Methods of forming a nanocrystal are provided. The nanocrystal may be a binary nanocrystal of general formula M1A or of general formula M1O, a ternary nanocrystal of general formula M1M2A, of general formula M1AB or of general formula M1M2O or a quaternary nanocrystal of general formula M1M2AB. M1 is a metal of Groups II-IV, Group VII or Group VIII of the PSE. A is an element of Group VI or Group V of the PSE. O is oxygen. A homogenous reaction mixture in a non-polar solvent of low boiling point is formed, that includes a metal precursor containing the metal M1 and, where applicable M2. For an oxygen containing nanocrystal the metal precursor contains an oxygen donor. Where applicable, A is also included in the homogenous reaction mixture. The homogenous reaction mixture is under elevated pressure brought to an elevated temperature that is suitable for forming a nanocrystal.
    Type: Application
    Filed: October 3, 2008
    Publication date: February 10, 2011
    Applicant: AGENCY FOR SCIENCE, TECHNOLOGY AND RESEARCH
    Inventors: Enyi Ye, Yin Win Khin, Mingyong Han
  • Patent number: 7867471
    Abstract: A process of producing a ceramic powder including providing a plurality of precursor materials in solution, wherein each of the plurality of precursor materials in solution further comprises at least one constituent ionic species of a ceramic powder, combining the plurality of precursor materials in solution with an onium dicarboxylate precipitant solution to cause co-precipitation of the ceramic powder precursor in a combined solution; and separating the ceramic powder precursor from the combined solution. The process may further include calcining the ceramic powder precursor.
    Type: Grant
    Filed: April 3, 2009
    Date of Patent: January 11, 2011
    Assignee: SACHEM, Inc.
    Inventor: Wilfred Wayne Wilson
  • Publication number: 20110003085
    Abstract: A porous metal oxide is formed by creating a metal oxide material with a hydrolysis reaction in solution. The hydrolysis reaction or reaction products of a metal oxide precursor react simultaneously or in conjunction with a metal salt or a disassociation species of a metal salt. The metal oxide material is conditioned, and is refined to produce metal oxide particles having a porous structure containing crystallites.
    Type: Application
    Filed: September 7, 2010
    Publication date: January 6, 2011
    Applicant: CARRIER CORPORATION
    Inventors: Treese Hugener-Campbell, Thomas Henry Vanderspurt, Wayde R. Schmidt, Steven M. Zhitnik
  • Publication number: 20100278721
    Abstract: A method for making the mesoporous material includes the following steps: dissolving a nanocrystal powder in an organic solvent, and achieving a solution A with concentration of 1-30 mg/ml; dissolving a surfactant in water, and achieving a solution B with an approximate concentration of 0.002-0.05 mol/ml; mixing the solution A and the solution B in a volume ratio of 1: (5-30), and achieving a mixture; stirring and emulsifying the mixture, until an emulsion C is achieved; removing the organic solvent from the emulsion C, and achieving a deposit; washing the deposit with deionized water, and achieving a colloid; and drying and calcining the colloid, and eventually achieving a mesoporous material. The mesoporous material has a large specific surface area, a high porosity, and a narrow diameter distribution.
    Type: Application
    Filed: December 14, 2007
    Publication date: November 4, 2010
    Applicants: Tsinghua University, HON HAI Precision Industry CO., LTD.
    Inventors: Ya-Dong Li, Ding-Sheng Wang, Feng Bai, Zi-Yang Huo, Li-Ping Liu, Wei Chen
  • Publication number: 20100270517
    Abstract: The present disclosure provides a solid dopant for doping a conductive polymer, which has a high dispersibility in a solvent by a plasma treatment, a method and an apparatus for preparing the solid dopants, a solid doping method of a conductive polymer using the solid dopants, and a solid doping method of a conductive polymer using plasma.
    Type: Application
    Filed: April 23, 2010
    Publication date: October 28, 2010
    Applicants: ELPANI CO., LTD., AJOU UNIVERSITY INDUSTRY-ACADEMIC COOPERATION FOUNDATION
    Inventors: Yong Cheol Hong, Suck Hyun Lee, O. Pil Kwon, Tae Ja Kim
  • Patent number: 7820124
    Abstract: A material comprising a plurality of nanoparticles. Each of the plurality of nanoparticles includes at least one of a metal phosphate, a metal silicate, a metal oxide, a metal borate, a metal aluminate, and combinations thereof. The plurality of nanoparticles is substantially monodisperse. Also disclosed is a method of making a plurality of substantially monodisperse nanoparticles. The method includes providing a slurry of at least one metal precursor, maintaining the pH of the slurry at a predetermined value, mechanically milling the slurry, drying the slurry to form a powder; and calcining the powder at a predetermined temperature to form the plurality of nanoparticles.
    Type: Grant
    Filed: October 5, 2006
    Date of Patent: October 26, 2010
    Assignee: General Electric Company
    Inventors: Kalaga Murali Krishna, Sergio Paulo Martins Loureiro, Mohan Manoharan, Geetha Karavoor, Shweta Saraswat
  • Publication number: 20100266485
    Abstract: A process comprises (a) combining (1) at least one base and (2) at least one metal carboxylate salt comprising (i) a metal cation selected from metal cations that form amphoteric metal oxides or oxyhydroxides and (ii) a lactate or thiolactate anion, or metal carboxylate salt precursors comprising (i) at least one metal salt comprising the metal cation and a non-interfering anion and (ii) lactic or thiolactic acid, a lactate or thiolactate salt of a non-interfering, non-metal cation, or a mixture thereof; and (b) allowing the base and the metal carboxylate salt or metal carboxylate salt precursors to react.
    Type: Application
    Filed: December 16, 2008
    Publication date: October 21, 2010
    Inventor: Timothy D. Dunbar
  • Publication number: 20100264379
    Abstract: Porous metal oxides are provided. The porous metal oxides are prepared by heat treating a coordination polymer. A method of preparing the porous metal oxide is also provided. According to the method, the shape of the particles of the metal oxide can be easily controlled, and the shape and distribution of pores of the porous metal oxide can be adjusted.
    Type: Application
    Filed: May 20, 2010
    Publication date: October 21, 2010
    Inventors: Dong-min Im, Yong-nam Ham
  • Patent number: 7811543
    Abstract: A method and apparatus for producing surface stabilized nanometer-sized particles includes the steps of mixing reactants, a surface-stabilizing surfactant, and a high boiling point liquid to form a mixture, continuously passing the mixture through an ultrasonic spray nozzle to form a mist of droplets of the mixture, injecting the mist directly into a furnace to cause a reaction between species of the mixture, and collecting the nanometer-sized products. The ultrasonic nozzle is positioned directly at one end of the heating furnace, preferably the top end, for travel of the droplets through the furnace. The continuous liquid-flow process, along with certain operating parameters, eliminates the need for dilution of the high boiling point liquid with a low boiling point solvent as in the prior art, significantly increases the yield, improves the quality of the product, and makes the process scalable.
    Type: Grant
    Filed: October 9, 2008
    Date of Patent: October 12, 2010
    Assignee: Irilliant, Inc.
    Inventors: Yuri T. Didenko, Yuhua Ni
  • Publication number: 20100254875
    Abstract: A material comprising a plurality of nanoparticles. Each of the plurality of nanoparticles includes at least one of a metal phosphate, a metal silicate, a metal oxide, a metal borate, a metal aluminate, and combinations thereof. The plurality of nanoparticles is substantially monodisperse. Also disclosed is a method of making a plurality of substantially monodisperse nanoparticles. The method includes providing a slurry of at least one metal precursor, maintaining the pH of the slurry at a predetermined value, mechanically milling the slurry, drying the slurry to form a powder; and calcining the powder at a predetermined temperature to form the plurality of nanoparticles.
    Type: Application
    Filed: October 5, 2006
    Publication date: October 7, 2010
    Inventors: Kalaga Murali Krishna, Sergio Paulo Martins Loureiro, Mohan Manoharan, Geetha Karavoor, Shweta Saraswat
  • Patent number: 7803347
    Abstract: A technique for bonding an organic group with the surface of fine particles such as nanoparticles through strong linkage is provided, whereas such fine particles are attracting attention as materials essential for development of high-tech products because of various unique excellent characteristics and functions thereof. Organically modified metal oxide fine particles can be obtained by adapting high-temperature, high-pressure water as a reaction field to bond an organic matter with the surface of metal oxide fine particles through strong linkage. The use of the same condition enables not only the formation of metal oxide fine particles but also the organic modification of the formed fine particles. The resulting organically modified metal oxide fine particles exhibit excellent properties, characteristics and functions.
    Type: Grant
    Filed: July 1, 2005
    Date of Patent: September 28, 2010
    Assignee: Tohoku Techno Arch Co., Ltd.
    Inventor: Tadafumi Ajiri
  • Patent number: 7799459
    Abstract: A compound for use as active material of a positive electrode of a lithium-ion cell. This compound has an average discharge voltage above 4.5V in relation to the Li+/Li couple of approximately 4.7V. The compound includes: a) a spinel-type crystalline phase of formula LiaNiII0.5?xMnIII2xMnIV1.5?x?yMyO4 in which elements Ti and Al, or a mixture of these; 0.8<a<1.3; 0<x?0.15; 0<y?0.15; b) a cubic crystalline phase of formula Li1?tNi1+tO in which 0?t?1; and c) a rhomboedric crystalline phase of formula Li1?ZNi1+zO2 in which 0?z?1.
    Type: Grant
    Filed: May 24, 2007
    Date of Patent: September 21, 2010
    Assignee: Saft Groupe SA
    Inventors: Jean-Paul Peres, Stephane Gillot, Frederic Chouquais, Claudette Audry, Andre Lecerf
  • Patent number: 7799730
    Abstract: The invention relates to a cylindrical catalyst body 1 which is characterized in that indentations are provided on the circumferential surface 3 of the catalyst body 1. These indentations are preferably configured as grooves 4 and webs 5 which run parallel to the longitudinal axis 2 of the catalyst body 1.
    Type: Grant
    Filed: April 27, 2006
    Date of Patent: September 21, 2010
    Assignee: Sud-Chemie AG
    Inventors: Norbert Ringer, Gerhard Selig, Hans-Joachim Müller
  • Patent number: 7799296
    Abstract: A method for converting nickel into a nickel salt solution. Nickel is dissolved and reacted in an oxygen-enriched acidic solution to produce a nickel salt solution as illustrated in the following chemical equation, wherein X is a conjugate base: Ni+H2X+½O2->NiX+H2O.
    Type: Grant
    Filed: November 8, 2005
    Date of Patent: September 21, 2010
    Assignee: Ovonic Battery Company, Inc.
    Inventors: Michael A. Fetcenko, Cristian Fierro, Avram Zallen, Tim Hicks
  • Publication number: 20100167037
    Abstract: There are provided a nickel oxide film for a bolometer and a manufacturing method thereof, and an infrared detector using the nickel oxide film. The nickel oxide film has properties with a TCR value greater than ?3%/° C., a low noise value, and stable and high reproducibility properties. The nickel oxide film is applicable to manufacturing an infrared detector using a nickel oxide film for a bolometer.
    Type: Application
    Filed: October 29, 2009
    Publication date: July 1, 2010
    Inventors: Hee-Chul Lee, Dong Soo Kim, Yong-Soo Lee
  • Publication number: 20100135897
    Abstract: A method of preparation of spherical tricobalt tetraoxide, including at least oxidizing a bivalent cobalt salt in a wet environment and in the presence of a precipitant, a complexing agent, and an oxidant to yield spherical cobalt oxyhydroxide.cobalt hydroxide according to the following equation Co2++3OH?+O?CoOOH.Co(OH)2; oxidizing the spherical hydroxy cobalt oxyhydroxide.cobalt hydroxide to yield spherical tricobalt tetraoxide according to the following equation 6 CoOOH.Co(OH)2+O?4 Co3O4+9 H2O; and roasting the spherical tricobalt tetraoxide at low or intermediate temperature to yield a black powder. The method is easily practiced and suitable for mass production, and the resultant spherical tricobalt tetraoxide has stable structure, reliable properties, and high activity.
    Type: Application
    Filed: November 9, 2009
    Publication date: June 3, 2010
    Applicant: NINGBO JINHE NEW MATERIALS CO., LTD.
    Inventor: Jinhua HE
  • Patent number: 7718315
    Abstract: There is disclosed an alkaline battery including a positive electrode material mixture, a negative electrode, a separator interposed between the positive electrode material mixture and the negative electrode, and an alkaline electrolyte, wherein the positive electrode material mixture includes a first active material comprising nickel oxyhydroxide and a second active material comprising manganese dioxide, the nickel oxyhydroxide includes a ?-type crystal structure, the content of nickel in the nickel oxyhydroxide is not less than 45 wt %, and the average particle diameter on a volume basis of the nickel oxyhydroxide measured with a laser diffraction particle size distribution analyzer is 3 to 20 ?m.
    Type: Grant
    Filed: November 4, 2004
    Date of Patent: May 18, 2010
    Assignee: Panasonic Corporation
    Inventors: Fumio Kato, Katsuya Sawada, Hidekatsu Izumi, Yasuo Mukai, Shigeto Noya
  • Patent number: 7700068
    Abstract: The alpha form of nickel (II) hydroxide is formed by dissolving a compound of nickel (II), such as nickel acetate, in a water miscible dihydric alcohol (diol), such as ethylene glycol, propylene glycol and suitable oligomers, and adding a suitable base such as sodium carbonate. The ?-Ni(OH)2 precipitate is separated from the diol-based mother liquor and dried. This stable ?-Ni(OH)2 can be calcined at temperatures in the range of about 573K to about 1073K to form nanometer-size particles of NiO having, for example, fibrous shapes. And the small particles of NiO can be reduced with hydrogen to form small, fibrous nickel particles. Both the NiO particles and Ni particles have utility as catalysts and offer utility in applications requiring electronic and/or magnetic properties.
    Type: Grant
    Filed: July 19, 2006
    Date of Patent: April 20, 2010
    Assignees: GM Global Technology Operations, Inc., Dalian Institute of Chemical Physica, Chinese Academy of Sciences
    Inventors: Wenjie Shen, Yong Li, Mei Cai, Jerry D. Rogers
  • Patent number: 7678355
    Abstract: A method for producing a highly crystalline perovskite-type complex compound is provided that exhibits stably a high Seebeck coefficient and a low electric resistivity even at higher temperatures. A method for producing a complex perovskite-type compound with less environmental load is also provided. The method comprises a step of dissolving a nitrate salt containing a rare earth element, a nitrate salt containing an alkaline earth metal element, a nitrate salt containing manganese, and an organic polymer into a solvent to form a solution, a step of mixing and stirring the solution, a step of preparing a precursor powder from the solution through heating and drying thereof, and a step of calcining the precursor powder in atmosphere.
    Type: Grant
    Filed: May 30, 2005
    Date of Patent: March 16, 2010
    Assignee: Universal Entertainment Corporation
    Inventor: Koh Takahashi
  • Publication number: 20100055016
    Abstract: Provided is a method of manufacturing oxide-based nano-structured materials using a chemical wet process, and thus, the method can be employed to manufacture oxide-based nano-structured materials having uniform composition and good electrical characteristics in large quantities, the method having a relatively simple process which does not use large growing equipment. The method includes preparing a first organic solution that comprises a metal, mixing the first organic solution with a second organic solution that contains hydroxyl radicals (—OH), filtering the mixed solution using a filter in order to extract oxide-based nano-structured materials formed in the mixed solution, drying the extracted oxide-based nano-structured materials to remove any remaining organic solution, and heat treating the dried oxide-based nano-structured materials.
    Type: Application
    Filed: February 1, 2008
    Publication date: March 4, 2010
    Inventors: Sang-Hyeob Kim, Hye-Jin Myoung, Sung-Lyul Maeng, G.A.J. Amaratunga, Sunyoung Lee
  • Publication number: 20100019201
    Abstract: The present invention relates to a process for producing nanosize to microsize particles of compounds of the rare earth metals and other transition metals and also for producing colloid-chemically stable sols of these particles.
    Type: Application
    Filed: July 13, 2007
    Publication date: January 28, 2010
    Applicant: H. C. Starck GmbH
    Inventors: Lothar Puppe, Johan Kijlstra, Ralph Weber, Michaela Frye, Dirk Storch
  • Publication number: 20100003203
    Abstract: The present invention relates to methods of producing surface-modified nanoparticulate particles at least of one metal oxide, metal hydroxide and/or metal oxide hydroxide, and aqueous suspensions of these particles. The invention further relates to the surface-modified nanoparticulate particles, obtainable by these methods, at least of one metal oxide, metal hydroxide and/or metal oxide hydroxide and aqueous suspensions of these particles, and to their use for cosmetic sunscreen preparations, as stabilizer in plastics and as antimicrobial active ingredient.
    Type: Application
    Filed: October 10, 2007
    Publication date: January 7, 2010
    Applicant: BASF SE
    Inventors: Andrey Karpov, Hartmut Hibst, Jutta Kissel, Bernd Bechtloff, Hartwig Voss, Kerstin Schierle-Arndt, Valerie Andre
  • Publication number: 20090324486
    Abstract: A method is disclosed for fabrication of NiO nanoparticles and NiO chip-like nanoflakes by solvothermal technique. Mixed organic alcohols were used as solvent to make a homogenous solution from a nickel containing salt (or complex) for production of NiO nanoparticles and chip-like nanoflakes. The solution was heated in a sealed flask sitting inside a warm furnace. The precipitate was filtered, rinsed, dried and calcined to produce nanoparticles or nanoflakes. The size of the particles was controllable by heating time and temperature. Similar procedures were used for production of both nanostructures except hydrogen peroxide addition to the initial solution for NiO chip-like nanoflakes fabrication.
    Type: Application
    Filed: September 5, 2009
    Publication date: December 31, 2009
    Inventors: YASER Bahari Molla Mahaleh, KHATIBOL ESLAM Sadrnezhaad, DAWOOD Hosseini
  • Patent number: 7618609
    Abstract: Increased lithium capacity of defective oxide materials and methods for preparation are described herein. Point defects may be introduced into a metal oxide to increase its lithium ion capacity. Defective metal oxides can be prepared by heating the metal oxide under O2/H2O at elevated temperatures. These increased lithium capacity metal oxides may be suitable for use as high specific energy cathodes in lithium metal and lithium ion batteries.
    Type: Grant
    Filed: January 16, 2002
    Date of Patent: November 17, 2009
    Assignee: The United States of America as represented by the Secretary of the Navy
    Inventors: Karen Swider Lyons, Debra R. Rolison
  • Publication number: 20090270251
    Abstract: The present invention is directed to cobalt compounds and methods for making such metal oxide compositions, specifically, metal oxide compositions having high surface area, high metal/metal oxide content, and/or thermal stability with inexpensive and easy to handle materials.
    Type: Application
    Filed: November 1, 2007
    Publication date: October 29, 2009
    Applicant: Symyx Technologies, Inc.
    Inventor: Alfred Hagemeyer
  • Patent number: 7601199
    Abstract: Glycerol is used as a solvent medium for the precipitation of a complex of nickel and glycerol material. The precipitate is separated from the liquid solvent and dried and calcined in air to produce small (nanometer size) particles characterized by a nickel core encased in a nickel oxide shell. The proportions of nickel core and nickel oxide shell can be controlled by management of the time and temperature of heating in air. Prolonged heating in air can produce nickel oxide particles, or calcining of the precipitate in nitrogen produces nickel particles.
    Type: Grant
    Filed: January 19, 2006
    Date of Patent: October 13, 2009
    Assignees: GM Global Technology Operations, Inc., Dalian Institute of Chemical Physics, Chinese Academy of Sciences
    Inventors: Wenjie Shen, Yong Li, Mei Cai, Jerry D. Rogers
  • Publication number: 20090249921
    Abstract: A method for producing metal oxide from a metal salt selected from nickel hydroxide, cobalt hydroxide, mixed nickel-cobalt hydroxide, nickel carbonate, cobalt carbonate, mixed nickel-cobalt carbonate and combinations thereof includes providing a mixture of the metal salt, mixing the metal salt with a binder selected from the group consisting of inorganic binder, organic binder and combinations thereof, forming the mixture into agglomerates, and calcining the agglomerates to produce metal oxide.
    Type: Application
    Filed: April 15, 2009
    Publication date: October 8, 2009
    Applicant: VALE INCO LIMITED
    Inventors: Geoffrey Edwin Osborne, Ahmed Vahed, Samuel Walton Marcuson
  • Publication number: 20090208405
    Abstract: A method for producing prefluxed metal oxide from a metal salt selected from nickel hydroxide, cobalt hydroxide, mixed nickel-cobalt hydroxide, nickel carbonate, cobalt carbonate, mixed nickel-cobalt carbonate and combinations thereof includes providing a mixture of at least one slag making oxide and a metal salt selected from the group consisting of nickel hydroxide, cobalt hydroxide, mixed nickel-cobalt hydroxide, nickel carbonate, cobalt carbonate, mixed nickel-cobalt carbonate and combinations thereof, blending with a binder, blending in a flux additive to form a slag-making mixture, forming the slag-making mixture into prefluxed agglomerates, and calcining the prefluxed agglomerates to produce a prefluxed metal oxide. An agglomerate is provided which includes a metal salt selected from nickel hydroxide, cobalt hydroxide, mixed nickel-cobalt hydroxide, nickel carbonate, cobalt carbonate, mixed nickel-cobalt carbonate and combinations thereof, a slag making oxide, and a flux additive.
    Type: Application
    Filed: February 6, 2009
    Publication date: August 20, 2009
    Applicant: VALE INCO LIMITED
    Inventors: Geoffrey Edwin Osborne, Ahmed Vahed, Samuel Walton Marcuson
  • Publication number: 20090202427
    Abstract: Process for preparing mixed metal oxide powders Abstract Process for preparing a mixed metal oxide powder, in which oxidizable starting materials are evaporated in an evaporation zone of a reactor and oxidized in the vaporous state in an oxidation zone of this reactor, the reaction mixture is cooled after the reaction and the pulverulent solids are removed from gaseous substances, wherein at least one pulverulent metal, together with one or more combustion gases, is fed to the evaporation zone, the metal is evaporated completely in the evaporation zone under nonoxidizing conditions, an oxygen-containing gas and at least one metal compound are fed, separately or together, in the oxidation zone to the mixture flowing out of the evaporation zone, the oxygen content of the oxygen-containing gas being at least sufficient to oxidize the metal, the metal compound and the combustion gas completely.
    Type: Application
    Filed: May 16, 2007
    Publication date: August 13, 2009
    Applicant: EVONIK DEGUSSA GMBH
    Inventors: Stipan Katusic, Guido Zimmermann, Michael Krämer, Horst Miess, Edwin Staab
  • Publication number: 20090196820
    Abstract: A process for producing an anisotropic magnetic material includes: preparing a feebly magnetic material capable of transforming into a magnetic material by a prescribed reaction, orienting the feebly magnetic material by imparting an external field to the feebly magnetic material, and transforming the oriented feebly magnetic material to a magnetic substance by the prescribed reaction.
    Type: Application
    Filed: February 4, 2009
    Publication date: August 6, 2009
    Applicants: TOYOTA JIDOSHA KABUSHIKI KAISHA, NATIONAL INSTITUTE FOR MATERIALS SCIENCE
    Inventors: Naoki Nakamura, Tetsuo Uchikoshi, Yoshio Sakka
  • Patent number: 7563431
    Abstract: A process for preparing nickel hydroxide by alkaline precipitation from nickel salt solutions in the presence of complexing agents, in which the precipitation is carried out at at least two different locations in the same mother liquor with different precipitation kinetics at the different locations and the mother liquor is mixed prior to agglomeration of the precipitated primary crystals, is described.
    Type: Grant
    Filed: June 24, 2002
    Date of Patent: July 21, 2009
    Assignee: H. C. Starck GmbH
    Inventors: Armin Olbrich, Juliane Meese-Marktscheffel, Viktor Stoller, Michael Erb, Sven Albrecht, Gerhard Gille, Gerd Maikowske, Frank Schrumpf, Josef Schmoll, Matthias Jahn
  • Patent number: 7553474
    Abstract: It is an object to provide a method for producing stable alkaline metal oxide sols having a uniform particle size distribution. The method comprises the steps of: heating a metal compound at a temperature of 60° C. to 110° C. in an aqueous medium that contains a carbonate of quaternary ammonium; and carrying out hydrothermal processing at a temperature of 110° C. to 250° C. The carbonate of quaternary ammonium is (NR4)2CO3 or NR4HCO3 in which R represents a hydrocarbon group, or a mixture thereof. The metal compound is one, or two or more metal compounds selected from a group of compounds based on a metal having a valence that is bivalent, trivalent, or tetravalent.
    Type: Grant
    Filed: August 8, 2005
    Date of Patent: June 30, 2009
    Assignee: Nissan Chemical Industries, Ltd.
    Inventors: Yutaka Ohmori, Hirokazu Kato, Yoshinari Koyama, Kenji Yamaguchi
  • Publication number: 20090142522
    Abstract: Described herein are hollow nanocrystals having various shapes that can be produced by a simple chemical process. The hollow nanocrystals described herein may have a shell as thin as 0.5 nm and outside diameters that can be controlled by the process of making.
    Type: Application
    Filed: October 12, 2004
    Publication date: June 4, 2009
    Applicant: THE REGENTS OF THE UNIVERSITY OF CALIFORNIA
    Inventors: A. Paul Alivisatos, Yadong Yin, Can Kerem Erdonmez
  • Publication number: 20090123354
    Abstract: A solid material is presented for the partial oxidation of natural gas. The solid material includes a solid oxygen carrying agent and a hydrocarbon activation agent. The material precludes the need for gaseous oxygen for the partial oxidation and provides better control over the reaction.
    Type: Application
    Filed: November 14, 2007
    Publication date: May 14, 2009
    Inventors: Deng-Yang Jan, Joel T. Walenga, Kurt M. Vanden Bussche, Joseph A. Kocal, Lisa M. King
  • Patent number: 7488464
    Abstract: Methods and systems for processing metal oxides from metal containing solutions. Metal containing solutions are mixed with heated aqueous oxidizing solutions and processed in a continuous process reactor or batch processing system. Combinations of temperature, pressure, molarity, Eh value, and pH value of the mixed solution are monitored and adjusted so as to maintain solution conditions within a desired stability area during processing. This results in metal oxides having high or increased pollutant loading capacities and/or oxidation states. These metal oxides may be processed according to the invention to produce co-precipitated oxides of two or more metals, metal oxides incorporating foreign cations, metal oxides precipitated on active and inactive substrates, or combinations of any or all of these forms.
    Type: Grant
    Filed: July 28, 2004
    Date of Patent: February 10, 2009
    Assignee: EnviroScrub Technologies Corporation
    Inventors: Charles F. Hammel, Richard M. Boren
  • Patent number: 7470647
    Abstract: Decomposition of methane to produce carbon monoxide-free hydrogen is accomplished using un-supported, nanometer sized, hydrogen reduced, nickel oxide particles made by a precipitation process. A nickel compound, such as NiCl2 or Ni(NO3) is dissolved in water and suitably precipitated as nickel hydroxide. The precipitate is separated, dried and calcined to form the NiO catalyst precursor particles.
    Type: Grant
    Filed: March 1, 2005
    Date of Patent: December 30, 2008
    Assignees: GM Global Technology Operations, Inc., Dalian Institute of Chemical Physics, Chinese Academy of Sciences
    Inventors: Mei Cai, Yong Li, Wenjie Shen, Jerry Dale Rogers
  • Publication number: 20080305025
    Abstract: The invention provides a method for the formation of small-size metal oxide particles, comprising the steps of: a) preparing a starting aqueous solution comprising at least one of metallic ion and complexes thereof, at a concentration of at least 0.1% w/w of the metal component; b) preparing a modifying aqueous solution having a temperature greater than 50° C.; c) contacting the modifying aqueous solution with the starting aqueous solution in a continuous mode in a mixing chamber to form a-modified system; d) removing the modified system from the mixing chamber in a plug-flow mode; wherein the method is characterized in that: i) the residence time in the mixing chamber is less than about 5 minutes; and iii) there are formed particles or aggregates thereof, wherein the majority of the particles formed are between about 2 nm and about 500 nm in size.
    Type: Application
    Filed: December 21, 2006
    Publication date: December 11, 2008
    Applicant: Joma International AS
    Inventors: Asher Vitner, Aharon Eyal
  • Patent number: 7455823
    Abstract: The invention discloses methods for making micron/nano meter sized particles of various inorganic materials such as minerals/oxides/sulphides/metals/ceramics at a steadily expanding liquid-liquid interface populated by suitable surfactant molecules that spontaneously organize themselves into superstructures varying over large length-scales. This experiment is realized in a radial Hele-Shaw cell where the liquid-liquid interfacial growth rate and consequently time scales such as arrival of surfactant molecules to the interface, the hydrodynamic flow effect to modulate the material organization into super structures at the dynamic charged interface.
    Type: Grant
    Filed: February 23, 2006
    Date of Patent: November 25, 2008
    Assignee: Council of Scientific & Industrial Research
    Inventors: Sastry Murali, Rautaray Debabrata