Group Viii Metal Containing Patents (Class 205/543)
  • Patent number: 10822652
    Abstract: The present disclosure provides method and systems for improving nanopore-based analysis of polymers. The disclosure provides methods for selectively modifying one or more monomeric subunit(s) of a kind in a re-analyte polymer that results in a polymer analyte with a modified subunit. The polymer analyte produces a detectable signal in a nanopore-based system. The detectable signal, and/or its deviation from a reference signal, indicates the location of the modified subunit in the polymer analyte and, thus, permits the identification of the subunit at that location in the original pre-analyte polymer.
    Type: Grant
    Filed: July 6, 2018
    Date of Patent: November 3, 2020
    Assignees: University of Washington through its Center for Commercialization, Illumina, Inc.
    Inventors: Jens H. Gundlach, Andrew Laszlo, Ian Derrington, Jeffrey G. Mandell
  • Patent number: 9562275
    Abstract: A method for producing highly pure platinum on an industrial scale, as well as the use of said highly pure platinum. According to the method, a hexahalogenoplatinate is reduced to platinum in acidic conditions.
    Type: Grant
    Filed: March 4, 2014
    Date of Patent: February 7, 2017
    Assignee: HERAEUS DEUTSCHLAND GMBH & CO., KG
    Inventors: Joachim Kralik, Martin Stettner, Hermann Von Eiff, Jan Schapp
  • Publication number: 20140311913
    Abstract: A method for synthesis of nanostructured metal oxide powders. The method comprises converting the metallic material into a precipitate of metal hydroxide by an electrochemical reaction and calcinating the metal hydroxide to form the metal oxides. The method of the invention is also used for the development of cermet particulates and topological insulator particles.
    Type: Application
    Filed: April 15, 2014
    Publication date: October 23, 2014
    Applicant: UNIVERSITI BRUNEI DARUSSALAM
    Inventors: Peter Hing, Lim Chee Ming, Jung Sang Cheol, Low Siaw Huei
  • Publication number: 20140262811
    Abstract: The invention is directed to a method for producing metal-containing particles, the method comprising subjecting an aqueous solution comprising a metal salt, Eh, lowering reducing agent, pH adjusting agent, and water to conditions that maintain the Eh value of the solution within the bounds of an Eh-pH stability field corresponding to the composition of the metal-containing particles to be produced, and producing said metal-containing particles in said aqueous solution at a selected Eh value within the bounds of said Eh-pH stability field. The invention is also directed to the resulting metal-containing particles as well as devices in which they are incorporated.
    Type: Application
    Filed: March 12, 2014
    Publication date: September 18, 2014
    Inventors: Ji-Won Moon, Hyunsung Jung, Tommy Joe Phelps, JR., Chad E. Duty, Ilia N. Ivanov, Pooran Chandra Joshi, Gerald Earle Jellison, JR., Beth Louise Armstrong, Sean Campbell Smith, Adam Justin Rondinone, Lonnie J. Love
  • Publication number: 20140262810
    Abstract: The invention is directed to a method for producing metal-containing (e.g., non-oxide, oxide, or elemental) nano-objects, which may be nanoparticles or nanowires, the method comprising contacting an aqueous solution comprising a metal salt and water with an electrically powered electrode to form said metal-containing nano-objects dislodged from the electrode, wherein said electrode possesses a nanotextured surface that functions to confine the particle growth process to form said metal-containing nano-objects. The invention is also directed to the resulting metal-containing compositions as well as devices in which they are incorporated.
    Type: Application
    Filed: March 12, 2014
    Publication date: September 18, 2014
    Applicant: UT-Battelle, LLC
    Inventors: Adam Justin Rondinone, Ilia N. Ivanov, Sean Campbell Smith, Chengdu Liang, Dale K. Hensley, Ji-Won Moon, Tommy Joe Phelps
  • Patent number: 8748091
    Abstract: Methods of trapping a deformed portion of a double-stranded polynucleotide in a membrane nanopassage are provided. In an aspect, the membrane has a nanopassage that defines a confine region, wherein the membrane separates a first fluid compartment from a second fluid compartment, and the nanopassage is in fluid communication with the first and second compartments. A polynucleotide is provided to the first fluid compartment and optionally a threshold voltage for the membrane and the polynucleotide is determined. A driving voltage across the membrane that is greater than the threshold voltage is applied to force a portion of the polynucleotide sequence into the nanopassage confine region, and decreased to a holding voltage bias to trap the polynucleotide portion in the nanopassage confine region. In particular, at least one nucleotide base-pair is fixably positioned in the nanopassage confine volume. In further embodiments, any of the trapping methods are used to characterize or sequence double stranded DNA.
    Type: Grant
    Filed: December 17, 2010
    Date of Patent: June 10, 2014
    Assignees: The Board of Trustees of the University of Illinois, The John Hopkins University
    Inventors: Gregory Timp, Winston Timp, Utkur Mirsaidov, Aleksei Aksimentiev, Jeffrey Comer
  • Patent number: 8449756
    Abstract: An undivided electrochemical cell. The electrochemical cell includes a housing defining an undivided chamber, the housing having one electrolyte inlet and at least two electrolyte outlets; an anode in the chamber; a cathode in the chamber; and an electrolyte in the chamber, wherein the anode and the cathode are not gas diffusion electrodes. The invention also involves a method of operating an electrochemical cell, and methods for making ferrate(VI).
    Type: Grant
    Filed: January 18, 2005
    Date of Patent: May 28, 2013
    Assignee: Battelle Memorial Institute
    Inventors: Bruce F. Monzyk, James K. Rose, Eric C. Burckle, Andrew D. Smeltz, Dennis G. Rider, Chad M. Cucksey, Timothy O. Clark
  • Publication number: 20120326673
    Abstract: A method for making a composite of cobalt oxide is disclosed. An aluminum nitrate solution is provided. Lithium cobalt oxide particles are introduced into the aluminum nitrate solution. The lithium cobalt oxide particles are mixed with the aluminum nitrate solution to form a mixture. A phosphate solution is added into the mixture to react with the aluminum nitrate solution and form an aluminum phosphate layer on surfaces of the lithium cobalt oxide particles. The lithium cobalt oxide particles with the aluminum phosphate layer formed on the surfaces thereof are heat treated to form a lithium cobalt oxide composite. The lithium cobalt oxide composite is electrochemical lithium-deintercalated at a voltage of Vx, wherein 4.5V<Vx?5V to form a cobalt oxide. The present disclosure also relates to a cobalt oxide and a composite of cobalt oxide.
    Type: Application
    Filed: October 26, 2011
    Publication date: December 27, 2012
    Applicants: HON HAI PRECISION INDUSTRY CO., LTD., TSINGHUA UNIVERSITY
    Inventors: JIAN-JUN LI, XIANG-MING HE, LI WANG, DAN WANG, XIAN-KUN HUANG, CHANG-YIN JIANG
  • Publication number: 20120156126
    Abstract: An electric current is passed through an acidic solution containing one or more soluble metal salts in an electrolytic cell divided by an anion exchange membrane. The acidic solution is fed into the cathode compartment whereby the passage of electric current at sufficient voltage causes the generation of hydrogen at the cathode. This gives rise to a localized very highly polarized region at the cathode resulting in a localized effective high relative pH. This causes the metal cation species to precipitate as a hydroxide (or oxide) species and electroadsorption/electrocoagulation causes the finely precipitated hydroxide (or oxide) species to adhere to the cathode. Electrodialytic transport of the liberated acid anions across the anion exchange membrane selectively removes the acid anions. Oxygen and hydrogen ions are formed by hydrolysis as the counter-reaction at the anode. Hydrogen ions combine with the anions to regenerate sulfuric acid.
    Type: Application
    Filed: January 20, 2010
    Publication date: June 21, 2012
    Inventors: Adam Justin Blunn, Adam Daniel Longstaff
  • Publication number: 20120125783
    Abstract: A method and system for probing mobile ion diffusivity and electrochemical reactivity on a nanometer length scale of a free electrochemically active surface includes a control module that biases the surface of the material. An electrical excitation signal is applied to the material and induces the movement of mobile ions. An SPM probe in contact with the surface of the material detects the displacement of mobile ions at the surface of the material. A detector measures an electromechanical strain response at the surface of the material based on the movement and reactions of the mobile ions. The use of an SPM tip to detect local deformations allows highly reproducible measurements in an ambient environment without visible changes in surface structure. The measurements illustrate effective spatial resolution comparable with defect spacing and well below characteristic grain sizes of the material.
    Type: Application
    Filed: November 8, 2011
    Publication date: May 24, 2012
    Inventors: Sergei V. Kalinin, Nina Balke, Amit Kumar, Nancy J. Dudney, Stephen Jesse
  • Patent number: 7972534
    Abstract: Process for preparing specific oxidants which in mixtures with precursors for preparing conductive polymers display a long processing time during the polymerization; oxidants obtainable by this process; mixtures comprising such specific (retarding) oxidants and the use of said oxidants for preparing solid electrolyte capacitors and conductive layers.
    Type: Grant
    Filed: March 20, 2004
    Date of Patent: July 5, 2011
    Assignee: H. C. Starck GmbH
    Inventors: Udo Merker, Stephan Kirchmeyer, Klaus Wussow
  • 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
  • Publication number: 20110036725
    Abstract: Novel devices for synthesizing ferrate and uses thereof are described. One aspect of the invention relates to devices and systems for synthesizing ferrate at a site proximal to the site of use.
    Type: Application
    Filed: October 25, 2010
    Publication date: February 17, 2011
    Applicant: FERRATE TREATMENT TECHNOLOGIES, LLC
    Inventors: Lee Edward Ciampi, Luke J. Daly
  • Patent number: 7820025
    Abstract: Novel devices for synthesizing ferrate and uses thereof are described. One aspect of the invention relates to devices and systems for synthesizing ferrate at a site proximal to the site of use.
    Type: Grant
    Filed: January 12, 2009
    Date of Patent: October 26, 2010
    Assignee: Ferrate Treatment Technologies, LLC
    Inventors: Lee Edward Ciampi, Luke J Daly
  • Publication number: 20090120802
    Abstract: Novel devices for synthesizing ferrate and uses thereof are described. One aspect of the invention relates to devices and systems for synthesizing ferrate at a site proximal to the site of use.
    Type: Application
    Filed: January 12, 2009
    Publication date: May 14, 2009
    Applicant: FERRATE TREATMENT TECHNOLOGIES, LLC
    Inventors: Lee Edward Ciampi, Luke J. Daly
  • Patent number: 7045051
    Abstract: A method for the electrochemical production of ferrate salts in an aqueous electrolyte solution comprising one or more hydroxide components. Dramatically increased yields of ferrate salts are obtained from using a mixture of sodium hydroxide and potassium hydroxide. Preferably, both sodium hydroxide and potassium hydroxide are present in concentrations greater than 5 molar, most preferably at least 10 molar, i.e., 10 M NaOH and 10 M KOH. The anode is preferably a sacrificial anode made out of an iron-containing material to supply the iron necessary for the ferrate production reaction.
    Type: Grant
    Filed: February 27, 2002
    Date of Patent: May 16, 2006
    Assignee: Lynntech, Inc.
    Inventors: Zoran Minevski, Jason Maxey, Carl Nelson, Dylan Taylor
  • Patent number: 6863792
    Abstract: A conductive oxide solid formed through an electrochemical process. The resulting solid predominantly contains oxides of the highest oxidation state. Additionally, the solid can be thick, uniform, stable across a wide range of acidity and temperature, fully hydrated, and conductive with a very low redox potential. A preferred embodiment is an iridium solid formed at high temperature in molten carbonate, said solid containing intercalated lithium. The solid has application as an electrode with reduced drift. An electrochemical acidity sensor is disclosed which pairs an electrode bearing the solid with a reference electrode. Additionally, sensor apparatuses for measuring carbon dioxide and other materials as well as methods for measuring materials using an embedded acidity sensor are disclosed.
    Type: Grant
    Filed: October 11, 2001
    Date of Patent: March 8, 2005
    Assignee: The Ohio State University
    Inventors: Marc J. Madou, Sheng Yao
  • Patent number: 6440279
    Abstract: A cermet inert anode having a reduced level of contaminating surface metal is disclosed. Methods for preparing cermet inert anodes and methods for treating cermet inert anodes are also disclosed. The methods generally use an oxidizing agent to convert metals on the surface of the anode to inert oxides and/or to otherwise remove the metal contaminants. The inert anodes of the present invention may be used in electrolytic reduction cells for the production of commercial purity aluminum, as well as other metals.
    Type: Grant
    Filed: December 28, 2000
    Date of Patent: August 27, 2002
    Assignee: Alcoa Inc.
    Inventors: Dennis R. De Capite, Gary P. Tarcy, Susanne M. Opalka, Don R. Careatti
  • Patent number: 6332969
    Abstract: A cermet composite material is made by treating at an elevated temperature a mixture comprising a compound of iron and a compound of at least one other metal, together with an alloy or mixture of copper and a noble metal. The alloy or mixture preferably comprises particles having an interior portion containing more copper than noble metal and an exterior portion containing more noble metal than copper. The noble metal is preferably silver. The cermet composite material preferably includes alloy phase portions and a ceramic phase portion. At least part of the ceramic phase portion preferably has a spinel structure.
    Type: Grant
    Filed: July 24, 2000
    Date of Patent: December 25, 2001
    Assignee: Alcoa Inc.
    Inventors: Siba P. Ray, Robert W. Woods, Robert K. Dawless, Robert B. Hosler
  • Patent number: 6315811
    Abstract: A method is described for the preparation of platinum wherein first an aqueous solution of a hexahalogenoplatinate is passed through a cation exchanger and then the solution obtained, at a temperature T>+30° C. and a pH of 0 to 4, is reduced by a reducing agent to precipitate in the form of a platinum sponge.
    Type: Grant
    Filed: June 16, 2000
    Date of Patent: November 13, 2001
    Assignee: W. C. Heraeus GmbH & Co. KG
    Inventors: Martin Stettner, Matthias Grehl, Horst Meyer
  • Patent number: 6179987
    Abstract: A method and apparatus to electrolytically produce high-purity magnetite particles is provided. The apparatus comprises a container for holding an electrolytic solution. In accordance with one embodiment, the electrolytic solution includes sodium chloride and deionized water. A pair of carbon steel electrodes are submerged within the electrolytic solution. A d.c. power supply is also provided to apply a voltage to the electrodes for a period of time sufficient to produce the magnetite particles.
    Type: Grant
    Filed: August 11, 1999
    Date of Patent: January 30, 2001
    Assignee: UT Battelle, LLC
    Inventors: Constantinos Tsouris, David W. DePaoli, Joel T. Shor
  • Patent number: 5958197
    Abstract: A gas diffusion electrode comprising an electrically conductive web provided on at least one side thereof with a coating containing a rhodium--rhodium oxide catalyst on a carbon black support and a method for the preparation of the rhodium--rhodium oxide catalyst.
    Type: Grant
    Filed: January 26, 1998
    Date of Patent: September 28, 1999
    Assignee: De Nora S.p.A.
    Inventors: Robert J. Allen, Daniel Czerwiec, James R. Giallombardo, Khaleda Shaikh
  • Patent number: 5785837
    Abstract: A process for the preparation by electrodeposition of metal oxide film and powder compounds for ferroelectric memory materials and ferrites wherein the metal oxide includes a plurality of metals. The process comprises providing an electrodeposition bath, providing soluble salts of the metals to this bath, electrically energizing the bath to thereby cause formation of a recoverable film of metal on the electrode, recovering the resultant film as a film or a powder, and recovering powder formed on the floor of the bath. The films and powders so produced are subsequently annealed to thereby produce metal oxide for use in electronic applications. The process can be employed to produce metal-doped metal oxide film and powder compounds for transparent conductors. The process for preparation of these metal-doped metal oxides follows that described above.
    Type: Grant
    Filed: January 2, 1996
    Date of Patent: July 28, 1998
    Assignee: Midwest Research Institute
    Inventors: Raghu Nath Bhattacharya, David S. Ginley