Patents by Inventor MATTHEW R. MASCHMANN

MATTHEW R. MASCHMANN has filed for patents to protect the following inventions. This listing includes patent applications that are pending as well as patents that have already been granted by the United States Patent and Trademark Office (USPTO).

  • Publication number: 20230132011
    Abstract: A method of depositing a nanoscale-thin film onto a substrate is disclosed. The method generally comprises depositing a layer of a solid or gaseous state functionalizing molecule onto or adjacent to the first surface of the substrate and exposing the first surface to a source of ionizing radiation, thereby functionalizing the first surface of the substrate. Once the layer of functionalizing molecule is removed, a nanoscale-thin film is then deposited onto the functionalized first surface of the substrate.
    Type: Application
    Filed: December 23, 2022
    Publication date: April 27, 2023
    Inventors: Matthew R. Maschmann, Matthias J. Young
  • Patent number: 11613807
    Abstract: A method of depositing a nanoscale-thin film onto a substrate is disclosed. The method generally comprises depositing a layer of a solid or gaseous state functionalizing molecule onto or adjacent to the first surface of the substrate and exposing the first surface to a source of ionizing radiation, thereby functionalizing the first surface of the substrate. Once the layer of functionalizing molecule is removed, a nanoscale-thin film is then deposited onto the functionalized first surface of the substrate.
    Type: Grant
    Filed: July 28, 2021
    Date of Patent: March 28, 2023
    Assignee: The Curators of the University of Missouri
    Inventors: Matthew R. Maschmann, Matthias J. Young
  • Publication number: 20220033963
    Abstract: The present disclosure relates to a method of depositing a nanoscale-thin film onto a substrate. The method generally comprises depositing a layer of a solid or gaseous state functionalizing molecule onto or adjacent to the first surface of the substrate and exposing the first surface to a source of ionizing radiation, thereby functionalizing the first surface of the substrate. Once the layer of functionalizing molecule is removed, a nanoscale-thin film is then deposited onto the functionalized first surface of the substrate.
    Type: Application
    Filed: July 28, 2021
    Publication date: February 3, 2022
    Inventors: MATTHEW R. MASCHMANN, MATTHIAS J. YOUNG
  • Patent number: 9658087
    Abstract: A method for making an artificial hair sensor, comprising the steps of: (a) depositing an electrode at each end of a microcapillary having an inside surface; (b) coating a structural fiber with alumina; (c) placing the alumina coated structural fiber inside the microcapillary, wherein part of the alumina coated structural fiber is in a spaced annular relationship with the microcapillary inside surface and part of the fiber extends outside the microcapillary; (d) placing the microcapillary and alumina coated structural fiber inside a heated furnace chamber; and, (e) injecting a vaporized catalyst into the heated furnace chamber. The vaporized catalyst may be a solution of ferrocene in xylene. The microcapillary may be made of glass.
    Type: Grant
    Filed: May 6, 2015
    Date of Patent: May 23, 2017
    Assignee: The United States of America as represented by the Secretary of the Air Force
    Inventors: Jeffrey W. Baur, Matthew R. Maschmann, Gregory J. Ehlert, Benjamin T. Dickinson, David M. Phillips
  • Patent number: 9487877
    Abstract: In one embodiment, SWNTs are synthesized from an embedded catalyst in a modified porous anodic alumina (PAA) template. Pd is electrodeposited into the template to form nanowires that grow from an underlying conductive layer beneath the PAA and extend to the initiation sites of the SWNTs within each pore. Individual vertical channels of SWNTs are created, each with a vertical Pd nanowire back contact. Further Pd deposition results in annular Pd nanoparticles that form on portions of SWNTs extending onto the PAA surface. Two-terminal electrical characteristics produce linear I-V relationships, indicating ohmic contact in the devices.
    Type: Grant
    Filed: February 1, 2008
    Date of Patent: November 8, 2016
    Assignee: PURDUE RESEARCH FOUNDATION
    Inventors: Aaron D. Franklin, Matthew R. Maschmann, Timothy S. Fisher, Timothy D. Sands
  • Publication number: 20090194424
    Abstract: In one embodiment, SWNTs are synthesized from an embedded catalyst in a modified porous anodic alumina (PAA) template. Pd is electrodeposited into the template to form nanowires that grow from an underlying conductive layer beneath the PAA and extend to the initiation sites of the SWNTs within each pore. Individual vertical channels of SWNTs are created, each with a vertical Pd nanowire back contact. Further Pd deposition results in annular Pd nanoparticles that form on portions of SWNTs extending onto the PAA surface. Two-terminal electrical characteristics produce linear I-V relationships, indicating ohmic contact in the devices.
    Type: Application
    Filed: February 4, 2008
    Publication date: August 6, 2009
    Inventors: AARON D. FRANKLIN, MATTHEW R. MASCHMANN, TIMOTHY S. FISHER, TIMOTHY D. SANDS
  • Publication number: 20080241755
    Abstract: In one embodiment, SWNTs are synthesized from an embedded catalyst in a modified porous anodic alumina (PAA) template. Pd is electrodeposited into the template to form nanowires that grow from an underlying conductive layer beneath the PAA and extend to the initiation sites of the SWNTs within each pore. Individual vertical channels of SWNTs are created, each with a vertical Pd nanowire back contact. Further Pd deposition results in annular Pd nanoparticles that form on portions of SWNTs extending onto the PAA surface. Two-terminal electrical characteristics produce linear I-V relationships, indicating ohmic contact in the devices.
    Type: Application
    Filed: February 1, 2008
    Publication date: October 2, 2008
    Inventors: AARON D. FRANKLIN, MATTHEW R. MASCHMANN, TIMOTHY S. FISHER, TIMOTHY D. SANDS