Patents by Inventor Andreas Brenneis

Andreas Brenneis 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: 20230266415
    Abstract: A method for measuring a magnetic field includes radiating a microwave field having a first frequency into at least one measuring location in a crystal, which comprises optically excitable color center defects at the measuring location, radiating excitation light and detecting resulting fluorescence light, applying a deformation force which results in local mechanical strain, wherein an applied first deformation force is selected such that the first frequency corresponds to a resonance frequency of the color center defects under the action of the first deformation force without the magnetic field to be measured and the detected fluorescence light becomes minimal. The method further includes placing the sensor into the magnetic field to be measured to bring about a shift in the resonance frequency and varying the applied deformation force to compensate the shift in the resonance frequency until a minimum fluorescence signal is again acquired at a second deformation force.
    Type: Application
    Filed: February 9, 2023
    Publication date: August 24, 2023
    Inventors: Andreas Brenneis, Janine Riedrich-Moeller, Robert Roelver, Tino Fuchs
  • Publication number: 20230176154
    Abstract: A method is for measuring phase currents of a device under test, in particular of an inverter, in which a sensor arrangement, which has a component including a crystal lattice with a defect, is arranged in a region of the device under test. The method includes using the sensor arrangement to detect a magnetic field formed by a vector of magnetic fields, the magnetic fields each in turn being brought about by one of the phase currents of the device under test, and calculating a vector of the phase currents from the vector of the magnetic fields based on a coefficient matrix.
    Type: Application
    Filed: March 3, 2021
    Publication date: June 8, 2023
    Inventors: Andreas Brenneis, Tino Fuchs, Felix Michael Stuerner, Robert Roelver
  • Publication number: 20230151419
    Abstract: A method of sequencing a prepared DNA strand includes providing the prepared DNA strand with nucleotides of the types dATP, dCTP, dGTP and/or dTTP, wherein at least one of the types of the nucleotides comprises a predetermined magnetic label. The method further includes placing the prepared DNA strand within a measuring range of a sensor unit comprising an operatively connected magneto-optical transducer unit and an optical sensor and optically exciting the magneto-optical transducer unit. The method continues with acquiring at least one value indicative of a fluorescence signal of the magneto-optical transducer unit, and assigning the acquired value to the at least one type of the nucleotides comprising the predetermined magnetic label.
    Type: Application
    Filed: October 5, 2022
    Publication date: May 18, 2023
    Inventors: Andreas Brenneis, Felix Michael Stuerner, Jochen Hoffmann, Nadezda Fomina, Robert Roelver, Tino Fuchs, Christian Grumaz
  • Publication number: 20230027677
    Abstract: A method for determining a rotational orientation change using an NMR gyroscope includes making use of a measure of determining, in a vapor cell, which is filled at least with a gaseous first element and a gaseous second element having non-vanishing nuclear spin, a nuclear spin component of the second element in the second direction and a nuclear spin component of the second element in a third direction. The second direction and the third direction are perpendicular to a first direction, which corresponds to the direction of the static magnetic field and to the polarization direction of the nuclear spin of the second element. Moreover, the second direction corresponds to the direction of an applied alternating magnetic field, the frequency of which corresponds to the Larmor frequency of the Larmor precession of the nuclear spin of the second element about the static magnetic field.
    Type: Application
    Filed: October 21, 2020
    Publication date: January 26, 2023
    Inventors: Tino Fuchs, Janine Riedrich-Moeller, Andreas Brenneis, Robert Roelver, Michael Curcic, Peter Degenfeld-Schonburg
  • Patent number: 11402210
    Abstract: A method for ascertaining a change in a spatial orientation of a nuclear magnetic resonance (NMR) gyroscope having a diamond doped with color centers includes applying a static external magnetic field in a first direction, polarizing a nuclear spin of the color centers of the diamond in a direction of the static magnetic field, and generating a cophasal Larmor precession of the nuclear spin of the color centers of the diamond through application of an alternating magnetic field in a second direction perpendicular to the first direction, whose frequency corresponds to the Larmor frequency of the nuclear spin of the color centers. The method further includes measuring a phase of the Larmor precession, and ascertaining a change in the spatial orientation in a plane perpendicular to the first direction based on a deviation of the precession frequency from an expected value.
    Type: Grant
    Filed: December 3, 2020
    Date of Patent: August 2, 2022
    Assignee: Robert Bosch GmbH
    Inventors: Robert Roelver, Andreas Brenneis, Felix Michael Stuerner, Janine Riedrich-Moeller, Tino Fuchs
  • Publication number: 20210172739
    Abstract: A method for ascertaining a change in a spatial orientation of a nuclear magnetic resonance (NMR) gyroscope having a diamond doped with color centers includes applying a static external magnetic field in a first direction, polarizing a nuclear spin of the color centers of the diamond in a direction of the static magnetic field, and generating a cophasal Larmor precession of the nuclear spin of the color centers of the diamond through application of an alternating magnetic field in a second direction perpendicular to the first direction, whose frequency corresponds to the Larmor frequency of the nuclear spin of the color centers. The method further includes measuring a phase of the Larmor precession, and ascertaining a change in the spatial orientation in a plane perpendicular to the first direction based on a deviation of the precession frequency from an expected value.
    Type: Application
    Filed: December 3, 2020
    Publication date: June 10, 2021
    Inventors: Robert Roelver, Andreas Brenneis, Felix Michael Stuerner, Janine Riedrich-Moeller, Tino Fuchs