Nitrogen Bonded To Nitrogen Patents (Class 205/432)
  • Patent number: 11479867
    Abstract: Provided is an electrochemical reaction method that includes: immersing an anode and a cathode into a solution that includes azide ion (N3?), an alkene, and a transition metal catalyst; passing a current through the anode; and forming a diazide from the alkene. Related systems are also provided.
    Type: Grant
    Filed: June 4, 2019
    Date of Patent: October 25, 2022
    Assignee: CORNELL UNIVERSITY
    Inventors: Song Lin, Niankai Fu, Gregory Stuart Sauer
  • Patent number: 11285446
    Abstract: A mixed gas supply device includes: a hydrogen gas generation unit that includes a hydrogen generator, the hydrogen generator generating hydrogen gas by decomposition of water and supplying the hydrogen gas; a nitrogen gas generation unit that includes a filter, the filter separating nitrogen gas from air and supplying the nitrogen gas; a gas mixing unit that mixes the supplied hydrogen gas and the supplied nitrogen gas and generates mix gas including the hydrogen gas and the nitrogen gas; and a single base on which the hydrogen gas generation unit, the nitrogen gas generation unit, and the gas mixing unit are mounted, the hydrogen gas generation unit, the nitrogen gas generation unit, and the gas mixing unit being integrated. The gas mixing unit supplies the generated mixed gas to outside.
    Type: Grant
    Filed: April 12, 2019
    Date of Patent: March 29, 2022
    Assignee: YAMAHA FINE TECHNOLOGIES CO., LTD.
    Inventors: Hidemi Takahashi, Takeshi Kato, Yuichi Doki, Hisashi Ichinokiyama
  • Patent number: 8591730
    Abstract: An ultraviolet reactor for treating a fluid. The reactor includes a vessel having an inlet for receiving fluid and an outlet for discharging fluid. The reactor further includes an ultraviolet light source and baffle plates. The baffle plates include holes arranged in a predetermined pattern for providing plug flow in areas in the reactor near the ultraviolet light source.
    Type: Grant
    Filed: July 28, 2010
    Date of Patent: November 26, 2013
    Assignee: Siemens Pte. Ltd.
    Inventors: Zhee Min Jimmy Yong, David Stibitz, Bruce Lee Coulter, Michael Scott Hoosier
  • Publication number: 20110206593
    Abstract: A process has been developed to selectively dissociate target molecules into component products compositionally distinct from the target molecule, wherein the bonds of the target molecule do not reform because the components are no longer reactive with each other. Dissociation is affected by treating the target molecule with light at a frequency and intensity, alone or in combination with a catalyst in an amount effective to selectively break bonds within the target molecule. Dissociation does not result in re-association into the target molecule by the reverse process, and does not produce component products which have a change in oxidation number or state incorporated oxygen or other additives because the process does not proceed via a typical reduction-oxidation mechanism. Target molecules include ammonia for waste reclamation and treatment, PCB remediation, and targeted drug delivery.
    Type: Application
    Filed: August 23, 2010
    Publication date: August 25, 2011
    Inventors: Richard W. Fahs, II, Matthew D.W. Fahs
  • Patent number: 7892517
    Abstract: Methods for the chemical modification of carbon nanotubes involve the derivatization of multi- and single-wall carbon nanotubes, including small diameter (ca. 0.7 nm) single-wall carbon nanotubes, with diazonium species. The method allows the chemical attachment of a variety of organic compounds to the side and ends of carbon nanotubes. These chemically modified nanotubes have applications in polymer composite materials, molecular electronic applications, and sensor devices. The methods of derivatization include electrochemical induced reactions, thermally induced reactions, and photochemically induced reactions. Moreover, when modified with suitable chemical groups, the derivatized nanotubes are chemically compatible with a polymer matrix, allowing transfer of the properties of the nanotubes (such as, mechanical strength or electrical conductivity) to the properties of the composite material as a whole.
    Type: Grant
    Filed: August 17, 2007
    Date of Patent: February 22, 2011
    Assignee: William Marsh University
    Inventors: James M. Tour, Jeffrey L. Bahr, Jiping Yang
  • Patent number: 7887774
    Abstract: The present invention is directed toward methods of selectively functionalizing carbon nanotubes of a specific type or range of types, based on their electronic properties, using diazonium chemistry. The present invention is also directed toward methods of separating carbon nanotubes into populations of specific types or range(s) of types via selective functionalization and electrophoresis, and also to the novel compositions generated by such separations.
    Type: Grant
    Filed: July 1, 2009
    Date of Patent: February 15, 2011
    Assignee: William Marsh Rice University
    Inventors: Michael S. Strano, Monica Usrey, Paul Barone, Christopher A. Dyke, James M. Tour, W. Carter Kittrell, Robert H Hauge, Richard E. Smalley, Irene Marie Marek, legal representative
  • Publication number: 20090301896
    Abstract: Methods for the chemical modification of carbon nanotubes involve the derivatization of multi- and single-wall carbon nanotubes, including small diameter (ca. 0.7 nm) single-wall carbon nanotubes, with diazonium species. The method allows the chemical attachment of a variety of organic compounds to the side and ends of carbon nanotubes. These chemically modified nanotubes have applications in polymer composite materials, molecular electronic applications, and sensor devices. The methods of derivatization include electrochemical induced reactions, thermally induced reactions, and photochemically induced reactions. Moreover, when modified with suitable chemical groups, the derivatized nanotubes are chemically compatible with a polymer matrix, allowing transfer of the properties of the nanotubes (such as, mechanical strength or electrical conductivity) to the properties of the composite material as a whole.
    Type: Application
    Filed: August 17, 2007
    Publication date: December 10, 2009
    Applicant: William Marsh Rice University
    Inventors: James M. Tour, Jeffrey L. Bahr, Jiping Yang
  • Patent number: 7572426
    Abstract: The present invention is directed toward methods of selectively functionalizing carbon nanotubes of a specific type or range of types, based on their electronic properties, using diazonium chemistry. The present invention is also directed toward methods of separating carbon nanotubes into populations of specific types or range(s) of types via selective functionalization and electrophoresis, and also to the novel compositions generated by such separations.
    Type: Grant
    Filed: July 29, 2004
    Date of Patent: August 11, 2009
    Assignee: William Marsh Rice University
    Inventors: Michael S. Strano, Monica Usrey, Paul Barone, Christopher A. Dyke, James M. Tour, W. Carter Kittrell, Robert H. Hauge, Richard E. Smalley
  • Patent number: 7001500
    Abstract: The application of an electric current to catalysts useful for the vapor phase oxidation of hydrocarbons allows for processes for obtaining enhanced catalytic processing of a given feed material with a given catalyst, processes allowing the ready change-over from one product of a given feed stream to another product of that feed stream without the need to change catalyst, and processes allowing the ready change over from one feed stream to another feed stream with the concomitant change over from one product to another product without the need to change catalyst.
    Type: Grant
    Filed: November 14, 2002
    Date of Patent: February 21, 2006
    Assignee: Rohm and Haas Company
    Inventors: Daniel Arthur Bors, Anne Mae Gaffney, Stephen Gerard Maroldo
  • Patent number: 6274114
    Abstract: Process for preparing hydrogen peroxide, comprising the following steps: a) a step of reduction of dioxygen in acidic medium with a hydrophobic organometallic complex, and b) a step of separation of the oxidized organometallic complex resulting from step a) and of the hydrogen peroxide by liquid/liquid extraction.
    Type: Grant
    Filed: June 16, 1999
    Date of Patent: August 14, 2001
    Assignee: L'Air Liquide, Societe Anonyme pour l'Etude et l'Exploitation des Procedes Georges Claude
    Inventors: Henry Ledon, Roger Guillard, Alain Tabard, Guy Royal, Gregory Broeker
  • Patent number: 6168694
    Abstract: Metal nitride, carbonitride, and oxycarbonitride powder with high surface area (up to 150 m2/g) is prepared by using sol-gel process. The metal organic precursor, alkoxides or amides, is synthesized firstly. The metal organic precursor is modified by using unhydrolyzable organic ligands or templates. A wet gel is formed then by hydrolysis and condensation process. The solvent in the wet gel is then be removed supercritically to form porous amorphous hydroxide. This porous hydroxide materials is sintered to 725° C. under the ammonia flow and porous nitride powder is formed. The other way to obtain high surface area nitride, carbonitride, and oxycarbonitride powder is to pyrolyze polymerized templated metal amides aerogel in an inert atmosphere. The electrochemical capacitors are prepared by using sol-gel prepared nitride, carbonitride, and oxycarbonitride powder. Two methods are used to assemble the capacitors.
    Type: Grant
    Filed: February 4, 1999
    Date of Patent: January 2, 2001
    Assignee: Chemat Technology, Inc.
    Inventors: Yuhong Huang, Oiang Wei, Chung-tse Chu, Haixing Zheng
  • Patent number: 5514253
    Abstract: A microfabricated sensing device is disclosed, including methods for using the same for the measurement of the concentration of a gas in a sample. Unique sensor configurations are described which substantially eliminate electrode cross-contamination during operation of the microfabricated sensing devices.
    Type: Grant
    Filed: July 13, 1994
    Date of Patent: May 7, 1996
    Assignee: I-Stat Corporation
    Inventors: Graham Davis, Imants R. Lauks, Raymond J. Pierce, Cindra A. Widrig