Patents by Inventor Christopher C. Tison

Christopher C. Tison 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).

  • Patent number: 10551719
    Abstract: An electro-optical directional coupler is provided having a substrate and a first and second optical waveguide formed on the substrate, where the second waveguide extends adjacent to and parallel with the first waveguide for at least one interaction length. The interaction length has a first end and a second end such that an optical signal applied only to one of the first and second waveguides couples to the other of the first and second waveguides between the ends. A first electrode is proximate the first and second waveguides and between the ends of the interaction length. A first voltage applied to the first electrode independently tunes a coupling of a TE mode. A second electrode located proximate the first and second waveguides and the first electrode and between the ends of the interaction length. A second voltage applied to the second electrode independently tunes a coupling of a TM mode.
    Type: Grant
    Filed: February 13, 2017
    Date of Patent: February 4, 2020
    Assignee: United States of America as represented by the Secretary of the Air Force
    Inventors: Richard S Kim, Attila A Szep, Michael L Fanto, Paul M Alsing, Gordon E Lott, Christopher C Tison
  • Patent number: 10466418
    Abstract: The invention provides an apparatus for optical integrated on-chip generation of photon pairs as a building block to create entangled photon states required for quantum information processing. The invention provided a frequency selective optical coupling device which controls the transmission of light by varying the relative dimensions of otherwise symmetrical linear optical waveguides tangential to an annular optical waveguide, thereby controlling the coupling of light between the linear optical waveguides and the annular optical waveguide. Dimensional change of the optical waveguides is achieved by a heated medium in proximity of the optical waveguides and under electronic control.
    Type: Grant
    Filed: December 6, 2017
    Date of Patent: November 5, 2019
    Assignee: The United States of America as represented by the Secretary of the Air Force
    Inventors: Michael L. Fanto, Paul M. Alsing, Christopher C. Tison, Stefan F. Preble, Jeffrey A. Steidle
  • Publication number: 20190187380
    Abstract: Briefly stated, the invention provides an apparatus for quantum computing comprising optical integrated on-chip generation of photon pairs as building blocks to create entangled photon states which are detected as necessary for quantum information processing. The invention provided a frequency selective optical coupling device which controls the transmission of light by varying the relative dimensions of otherwise symmetrical linear optical waveguides tangential to an annular optical waveguide, thereby controlling the coupling of light between the linear optical waveguides and the annular optical waveguide. Dimensional change of the optical waveguides is achieved by a heated medium in proximity of the optical waveguides and under electronic control.
    Type: Application
    Filed: February 20, 2019
    Publication date: June 20, 2019
    Inventors: MICHAEL L. FANTO, PAUL M. ALSING, CHRISTOPHER C. TISON, STEFAN F. PREBLE, JEFFREY A. STEIDLE
  • Publication number: 20190146155
    Abstract: The invention provides an apparatus for optical integrated on-chip generation of photon pairs as a building block to create entangled photon states required for quantum information processing. The invention provided a frequency selective optical coupling device which controls the transmission of light by varying the relative dimensions of otherwise symmetrical linear optical waveguides tangential to an annular optical waveguide, thereby controlling the coupling of light between the linear optical waveguides and the annular optical waveguide. Dimensional change of the optical waveguides is achieved by a heated medium in proximity of the optical waveguides and under electronic control.
    Type: Application
    Filed: December 6, 2017
    Publication date: May 16, 2019
    Inventors: MICHAEL L. FANTO, PAUL M. ALSING, CHRISTOPHER C. TISON, STEFAN F. PREBLE, JEFFREY A. STEIDLE
  • Publication number: 20180335570
    Abstract: The invention provides an apparatus for optical integrated on-chip generation of photon pairs as a building block to create entangled photon states required for quantum information processing. The invention provided a frequency selective optical coupling device which controls the transmission of light by varying the relative dimensions of otherwise symmetrical linear optical waveguides tangential to an annular optical waveguide, thereby controlling the coupling of light between the linear optical waveguides and the annular optical waveguide. Dimensional change of the optical waveguides is achieved by a heated medium in proximity of the optical waveguides and under electronic control.
    Type: Application
    Filed: November 15, 2017
    Publication date: November 22, 2018
    Inventors: MICHAEL L. FANTO, PAUL M. ALSING, CHRISTOPHER C. TISON, STEFAN F. PREBLE, JEFFREY A. STEIDLE
  • Publication number: 20180196331
    Abstract: An electro-optical directional coupler is provided having a substrate and a first and second optical waveguide formed on the substrate, where the second waveguide extends adjacent to and parallel with the first waveguide for at least one interaction length. The interaction length has a first end and a second end such that an optical signal applied only to one of the first and second waveguides couples to the other of the first and second waveguides between the ends. A first electrode is proximate the first and second waveguides and between the ends of the interaction length. A first voltage applied to the first electrode independently tunes a coupling of a TE mode. A second electrode located proximate the first and second waveguides and the first electrode and between the ends of the interaction length. A second voltage applied to the second electrode independently tunes a coupling of a TM mode.
    Type: Application
    Filed: February 13, 2017
    Publication date: July 12, 2018
    Inventors: Richard S. Kim, Attila A. Szep, Michael L. Fanto, Paul M. Alsing, Gordon E. Lott, Christopher C. Tison