Patents by Inventor Steven Tin

Steven Tin 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: 11119116
    Abstract: This disclosure is related to devices, systems, and techniques for determining, using an electro-opto-mechanical accelerometer system, a frequency value in order to determine an acceleration value. For example, an accelerometer system includes a light-emitting device configured to emit an optical signal and a circuit. The circuit is configured to modulate, using a modulating device, the optical signal to produce a modulated optical signal, receive, using a photoreceiver, the modulated optical signal, convert, using the photoreceiver, the modulated optical signal into an electrical signal, process the electrical signal to obtain a processed electrical signal, and transmit the processed electrical signal to the modulating device, where the modulating device is configured to modulate the optical signal based on the processed electrical signal. Additionally, the circuit is configured to determine, based on the processed electrical signal, a frequency value.
    Type: Grant
    Filed: April 1, 2019
    Date of Patent: September 14, 2021
    Assignee: Honeywell International Inc.
    Inventors: Chad Fertig, Arthur Savchenko, Joshua Dorr, Neil Krueger, Steven Tin
  • Patent number: 11119163
    Abstract: A device includes a substrate and nanoscale fin formed from a first material, a RF emitter that emits energy in a range of radio frequencies, and a waveguide formed from a second material. The device further includes a bichromatic directional coupler configured to couple pump and probe laser light into the waveguide. The waveguide is positioned proximate to the nanoscale fin along a coupling length such that the pump laser light propagating within the waveguide is coupled into the nanoscale fin from evanescent wave overlap along the coupling length. The pump laser light causes the first material to absorb the probe laser light when energy emitted by the RF emitter is at one or more frequencies dependent on a magnetic field. The device further includes a processor configured to determine a magnetic field strength of the magnetic field based on an identification of the one or more frequencies.
    Type: Grant
    Filed: February 10, 2020
    Date of Patent: September 14, 2021
    Assignee: Honeywell International Inc.
    Inventors: Matthew Wade Puckett, Neal Eldrich Solmeyer, Steven Tin, Robert Compton
  • Patent number: 11119114
    Abstract: This disclosure is related to devices, systems, and techniques for securing one or more mechanical structures to a frame of a proof mass assembly. For example, a system includes a light-emitting device configured to emit an optical signal, a circuit including a modulating device configured to modulate the optical signal to produce a modulated optical signal, and a mechanical assembly. The mechanical assembly includes an anchor structure including a set of connecting structures configured to pass the modulated optical signal, where the set of connecting structures includes two or more connecting structures, and where a width of each connecting structure of the set of connecting structures is less than a maximum width of the anchor structure and a mechanical structure intersecting with the anchor structure, the mechanical structure configured to guide the modulated optical signal.
    Type: Grant
    Filed: July 17, 2019
    Date of Patent: September 14, 2021
    Assignee: Honeywell International Inc.
    Inventors: Neil Krueger, Matthew Puckett, Arthur Savchenko, Chad Fertig, Steven Tin, Joshua Dorr
  • Publication number: 20210278484
    Abstract: A magnetometer comprises a diode structure including a diamond material having free electrons and free charge carriers. An electrical circuit is coupled to the diode structure and is operative to apply a forward bias voltage to the diode structure. An optical detector is operative to collect and measure an electroluminescence produced by the diode structure after the forward bias voltage is applied to the diode structure. A processor is coupled to the optical detector and is operative to determine a magnetic field based on the measured electroluminescence produced by the diode structure.
    Type: Application
    Filed: March 5, 2020
    Publication date: September 9, 2021
    Applicant: Honeywell International Inc.
    Inventors: Neal Eldrich Solmeyer, Steven Tin, Matthew Robbins, Eugene Freeman
  • Publication number: 20210255260
    Abstract: Systems and embodiments for an integrated photonics tensor magnetometer are described herein. In certain embodiments, a system includes a plurality of magnetometers. The system also includes a laser carrier wafer coupled to each of the plurality of magnetometers that commonly distributes one or more lasers to each of the magnetometers in the plurality of magnetometers. Additionally, the system includes a plurality of photodetectors that detect light emitted from the laser carrier wafer and the plurality of magnetometers. Further, the system includes one or more processors that execute computer-executable instructions that cause the processor to monitor and control operation of the one or more lasers and calculate a magnetic field gradient based on the detected light from the magnetometers.
    Type: Application
    Filed: September 21, 2020
    Publication date: August 19, 2021
    Applicant: Honeywell International Inc.
    Inventors: Neal Eldrich Solmeyer, Steven Tin, Matthew Wade Puckett, Robert Compton
  • Publication number: 20210247515
    Abstract: Systems and methods for a silicon photonics integrated optical velocimeter are provided herein. In some embodiments, a method includes producing a laser output at a laser source; emitting the laser output from a plurality of emitters formed in an optical chip; receiving a plurality of reflected portions of the emitted laser output at an optical collector formed in the optical chip, wherein the plurality of reflected portions are reflected off of at least one surface; beating the laser output against the reflected portions of the emitted laser output, wherein one of the laser output or the reflected portions of the emitted laser output are modulated by at least one modulation frequency; and calculating a doppler shift for each of the plurality of reflected portions of the emitted laser output based on an output of the beating and the at least one modulation frequency.
    Type: Application
    Filed: February 6, 2020
    Publication date: August 12, 2021
    Applicant: Honeywell International Inc.
    Inventors: Steven Tin, Matthew Wade Puckett, Chad Fertig
  • Patent number: 11079227
    Abstract: This disclosure is related to devices, systems, and techniques for determining, using an electro-opto-mechanical accelerometer system, a frequency value in order to determine an acceleration value. For example, an accelerometer system includes a light-emitting device configured to emit an optical signal and a circuit. The circuit is configured to determine a frequency value corresponding to the optical signal and determine an acceleration value based on the frequency value. Additionally, the accelerometer system includes a housing that encloses the light-emitting device, the circuit, and Helium gas, where the Helium gas defines a partial pressure within a range between 0.1 torr and 760 torr.
    Type: Grant
    Filed: April 1, 2019
    Date of Patent: August 3, 2021
    Assignee: Honeywell International Inc.
    Inventors: Chad Fertig, Arthur Savchenko, Steven Tin, Neil Krueger, Joshua Dorr
  • Patent number: 11079542
    Abstract: Systems and methods for an integrated photon source and detector of entangled photons are provided. In certain embodiments, a system includes a first waveguide layer comprising a photon producing waveguide configured to provide two photons propagating in orthogonal modes of a single waveguide. The system also includes a second waveguide layer comprising a photon conditioning waveguide network, the second waveguide layer formed on the first waveguide layer, the second waveguide layer having a different index of refraction.
    Type: Grant
    Filed: February 27, 2020
    Date of Patent: August 3, 2021
    Assignee: Honeywell International Inc.
    Inventors: Chad Fertig, Matthew Wade Puckett, Steven Tin
  • Patent number: 11079233
    Abstract: A stimulated Brillouin scattering gyroscope is provided. A pump laser generates continuous wave (CW) energy that travels through at least one bus waveguide to a waveguide resonator. A reflector is positioned within the waveguide resonator. The reflector is configured to pass at least some of the CW energy in a first direction and reflect at least some stimulated Brillouin scattering (SBS) energy in a second direction. A first detector is in operational communication with the at least one bus waveguide to detect CW energy. An output of the first detector used to at least adjust a pump laser frequency of the pump laser. A second detector is also in operational communication with the at least one bus waveguide. The second detector is used to determine phase shifts in detected SBS energy to determine at least rotation.
    Type: Grant
    Filed: September 18, 2019
    Date of Patent: August 3, 2021
    Assignee: Honeywell International Inc.
    Inventors: Jianfeng Wu, Matthew Wade Puckett, Steven Tin
  • Publication number: 20210180953
    Abstract: A stimulated Brillouin scattering gyroscope is provided. A pump laser generates continuous wave (CW) energy that travels through at least one bus waveguide to a waveguide resonator. A reflector is positioned within the waveguide resonator. The reflector is configured to pass at least some of the CW energy in a first direction and reflect at least some stimulated Brillouin scattering (SBS) energy in a second direction. A first detector is in operational communication with the at least one bus waveguide to detect CW energy. An output of the first detector used to at least adjust a pump laser frequency of the pump laser. A second detector is also in operational communication with the at least one bus waveguide. The second detector is used to determine phase shifts in detected SBS energy to determine at least rotation.
    Type: Application
    Filed: September 18, 2019
    Publication date: June 17, 2021
    Applicant: Honeywell International Inc.
    Inventors: Jianfeng Wu, Matthew Wade Puckett, Steven Tin
  • Publication number: 20210172803
    Abstract: An integrated photonics chip for thermal imaging comprises a photonics substrate including a plurality of receiver elements. Each receiver element comprises a first grating coupler optically coupled to a first waveguide filter and configured to receive a first wavelength of light at a given angle, with the first waveguide filter configured to pass the first wavelength of light; and a second grating coupler optically coupled to a second waveguide filter and configured to receive a second wavelength of light at the given angle, with second waveguide filter configured to pass the second wavelength of light. Each receiver element receives the wavelengths of light from an object of interest that emits the light due to blackbody radiation, and receives the wavelengths of light at respectively different angles. Each grating coupler receives a unique wavelength of light with respect to the other wavelengths of light received by the other grating couplers.
    Type: Application
    Filed: December 5, 2019
    Publication date: June 10, 2021
    Applicant: Honeywell International Inc.
    Inventors: Matthew Wade Puckett, Jianfeng Wu, Steven Tin, Neil A. Krueger
  • Publication number: 20210132163
    Abstract: A device includes a substrate and nanoscale fin formed from a first material, a RF emitter that emits energy in a range of radio frequencies, and a waveguide formed from a second material. The device further includes a bichromatic directional coupler configured to couple pump and probe laser light into the waveguide. The waveguide is positioned proximate to the nanoscale fin along a coupling length such that the pump laser light propagating within the waveguide is coupled into the nanoscale fin from evanescent wave overlap along the coupling length. The pump laser light causes the first material to absorb the probe laser light when energy emitted by the RF emitter is at one or more frequencies dependent on a magnetic field. The device further includes a processor configured to determine a magnetic field strength of the magnetic field based on an identification of the one or more frequencies.
    Type: Application
    Filed: February 10, 2020
    Publication date: May 6, 2021
    Applicant: Honeywell International Inc.
    Inventors: Matthew Wade Puckett, Neal Eldrich Solmeyer, Steven Tin, Robert Compton
  • Publication number: 20210116635
    Abstract: Systems and methods for an integrated photonics vertical coupler are provided herein. In certain embodiments, a device includes a first waveguide having a first photon and a second photon propagating therein, wherein the first photon and the second photon are propagating in orthogonal modes. Further, the device includes a second waveguide having a second coupling portion in close proximity with a first coupling portion of the first waveguide, wherein a physical relationship between the first waveguide and the second waveguide along the length of the second coupling portion causes an adiabatic transfer of the first photon and the second photon into distinct orthogonal modes of the second waveguide at different locations in the second coupling portion.
    Type: Application
    Filed: February 27, 2020
    Publication date: April 22, 2021
    Applicant: Honeywell International Inc.
    Inventors: Matthew Wade Puckett, Steven Tin, Chad Fertig
  • Publication number: 20210116783
    Abstract: Systems and embodiments for an integrated photonics mode splitter and converter are provided herein. In certain embodiments, a system includes a substrate having a first index of refraction. Additionally, the system includes a waveguide layer on the substrate, wherein the waveguide has a second index of refraction different from the first index of refraction. Also, the waveguide layer includes one or more mode splitters that receive at least one of a first photon in a first mode and a second photon in a second mode through an input port and provide one of the first photon through a first output port and the second photon through a second output port. The waveguide layer also includes a mode converter coupled to the second output of a mode splitter, wherein the mode converter receives the second photon through a port and outputs the second photon in the first mode through the port.
    Type: Application
    Filed: February 27, 2020
    Publication date: April 22, 2021
    Applicant: Honeywell International Inc.
    Inventors: Matthew Wade Puckett, Chad Fertig, Steven Tin
  • Publication number: 20210116639
    Abstract: Systems and methods for an integrated photon source and detector of entangled photons are provided. In certain embodiments, a system includes a first waveguide layer comprising a photon producing waveguide configured to provide two photons propagating in orthogonal modes of a single waveguide. The system also includes a second waveguide layer comprising a photon conditioning waveguide network, the second waveguide layer formed on the first waveguide layer, the second waveguide layer having a different index of refraction.
    Type: Application
    Filed: February 27, 2020
    Publication date: April 22, 2021
    Applicant: Honeywell International Inc.
    Inventors: Chad Fertig, Matthew Wade Puckett, Steven Tin
  • Publication number: 20210103166
    Abstract: Systems and methods for an integrated photonics quantum vector magnetometer are provided herein. In certain embodiments, a device includes a substrate; a radio frequency emitter that emits energy in a range of radio frequencies; and a waveguide layer formed on the substrate. The waveguide layer includes a first waveguide of a first material, wherein a probe laser is propagating within the first waveguide; and a second waveguide, wherein the second waveguide is positioned proximate to the first waveguide along a coupling length such that a pump laser propagating within the second waveguide is coupled into the first waveguide along the coupling length, wherein the pump laser causes the first material to absorb the probe laser at one or more frequencies in the range of frequencies. Moreover, the device includes a processing device that calculates a magnetic field strength based on an identification of the one or more frequencies.
    Type: Application
    Filed: February 12, 2020
    Publication date: April 8, 2021
    Applicant: Honeywell International Inc.
    Inventors: Matthew Wade Puckett, Neal Eldrich Solmeyer, Steven Tin
  • Patent number: 10956768
    Abstract: An optomechanical device for modulating an optical signal for reducing thermal noise and tracking mechanical resonance of a proof mass assembly comprises a circuit configured to receive, from a light-emitting device, the optical signal and modulate the optical signal to remove thermal noise and to drive a mechanical response frequency to the mechanical resonance of the proof mass assembly using a cooling feedback signal and a mechanical resonance feedback signal. The circuit is further configured to generate, using the modulated optical signal, the cooling feedback signal to correspond to a thermal noise signal of the modulated optical signal with a total loop gain of zero and a phase difference of 180 degrees and generate, using the modulated optical signal, the mechanical resonance feedback signal to drive the mechanical response frequency of the modulated optical signal to the mechanical resonance.
    Type: Grant
    Filed: April 22, 2019
    Date of Patent: March 23, 2021
    Assignee: Honeywell International Inc.
    Inventors: Joshua Dorr, Chad Fertig, Arthur Savchenko, Steven Tin, Neil Krueger
  • Publication number: 20210080549
    Abstract: A sensor system comprises a pulsed light source, and a passive sensor head chip in communication with the light source. The sensor head chip includes a first photonics substrate, a transmitting optical component on the first photonics substrate and configured to couple a pulse, transmitted through a first optical fiber from the light source, into a region of interest; and a receiving optical component on the first photonics substrate and configured to couple backscattered light, received from the region of interest, into a second optical fiber. A signal processing chip communicates with the sensor head chip and light source. The signal processing chip includes a second photonics substrate and comprises a passive optical filter array that receives the backscattered light from the second optical fiber. The filter array includes notch filters in communication with each other and operative for frequency selection; and optical detectors respectively coupled to the notch filters.
    Type: Application
    Filed: September 12, 2019
    Publication date: March 18, 2021
    Applicant: Honeywell International Inc.
    Inventors: Steven Tin, Chad Fertig, Matthew Wade Puckett, Neil A. Krueger, Jianfeng Wu
  • Publication number: 20210072279
    Abstract: An optomechanical device optomechanical device for stabilizing an optomechanical resonator comprising a circuit configured to generate a first optical signal and a second optical signal, modulate the first optical signal, modulate the second optical signal, and combine the first optical signal and the second optical signal into a combined optical signal to direct the combined optical signal into an assembly. An inner sidewall of a first beam structure of the assembly has a first inner spatial frequency correspond to a second inner spatial frequency of an inner sidewall of a second beam structure of the assembly and an outer sidewall of the first beam structure has a first outer spatial frequency correspond to a second outer spatial frequency of an outer sidewall of the second beam structure.
    Type: Application
    Filed: August 13, 2019
    Publication date: March 11, 2021
    Inventors: Neil Krueger, Chad Fertig, Matthew Puckett, Arthur Savchenko, Steven Tin, Joshua Dorr
  • Publication number: 20210048448
    Abstract: An optomechanical device comprising an assembly, one or more laser devices configured to generate a first optical signal and a second optical signal, and a circuit. The assembly includes a first beam structure comprising a first spatial frequency and a second beam structure comprising a second spatial frequency. The circuit is configured to modulate the second optical signal and output the first optical signal and the second optical signal to the assembly.
    Type: Application
    Filed: August 13, 2019
    Publication date: February 18, 2021
    Inventors: Neil Krueger, Joshua Dorr, Steven Tin, Chad Fertig, Arthur Savchenko