Patents by Inventor Alexander Stolyarov

Alexander Stolyarov 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: 11977218
    Abstract: The present disclosure provides systems and methods for medical imaging. The system may comprise a scope assembly. The scope assembly may comprise a housing unit configured to releasably couple to at least a portion of an elongated scope. The scope assembly may comprise an imaging unit operably coupled to the housing unit, wherein the imaging unit comprises an optics assembly configured to (i) receive one or more light beams that are transmitted through the elongated scope and (ii) direct at least a portion of the one or more light beams onto two or more locations within a subject's body. At least one of the two or more locations may comprise a target site. The imaging unit may be configured to move via a rotational and/or translational motion relative to the housing unit to alter a field of view when imaging within the subject's body.
    Type: Grant
    Filed: February 16, 2022
    Date of Patent: May 7, 2024
    Assignee: Activ Surgical, Inc.
    Inventors: Hossein Dehghani, Vasiliy E. Buharin, Roman Stolyarov, Thomas Calef, Liam O'Shea, Alexander J. Dye, Chris J. Situ
  • Patent number: 11951672
    Abstract: Methods of manufacturing multi-material fibers having one or more electrically-connectable devices disposed therein are described. In certain instances, the methods include the steps of: positioning the electrically-connectable device(s) within a corresponding pocket provided in a preform material; positioning a first electrical conductor longitudinally within a first conduit provided in the preform material; and drawing the multi-material fiber by causing the preform material to flow, such that the first electrical conductor extends within the multi-material fiber along a longitudinal axis thereof and makes an electrical contact with a first electrode located on each electrically-connectable device. A metallurgical bond may be formed between the first electrical conductor and the first electrode while drawing the multi-material fiber and/or, after drawing the multi-material fiber, the first electrical conductor may be located substantially along a neutral axis of the multi-material fiber.
    Type: Grant
    Filed: April 21, 2021
    Date of Patent: April 9, 2024
    Assignees: Advanced Functional Fabrics of America, Inc., Massachusetts Institute of Technology
    Inventors: Chia-Chun Chung, Jason Cox, Kristina McCarthy, Kristen Mulherin, Jimmy Nguyen, Michael Rein, Matthew Bernasconi, Lauren Cantley, Lalitha Parameswaran, Michael Rickley, Alexander Stolyarov
  • Publication number: 20230378649
    Abstract: Described is a flexible thermally-drawn receive phased array antenna and antenna system and a process for making the same. The phased array antenna system includes a plurality of antenna elements and one or more low noise amplifiers (LNAs) encapsulated in a fiber such as flexible polyetherimide (PEI) fiber material. A DC bias for the LNAs and other components is provided by one or more electrically conducting wires disposed in proximity to the antenna elements and also encapsulated in the fiber. In embodiments, the antenna elements are provided as dipole antenna elements and the phased array antenna is provided as a flexible thermally-drawn linear dipole receive phased array antenna operable at UHF frequencies.
    Type: Application
    Filed: May 19, 2023
    Publication date: November 23, 2023
    Applicant: Massachusetts Institute of Technology
    Inventors: Alan J. FENN, Alexander STOLYAROV, Siva YEGNANARAYANAN, Lauren CANTLEY
  • Patent number: 11692942
    Abstract: Techniques are disclosed for a chemical sensor architecture based on a fabric-based spectrometer. An example apparatus implementing the techniques includes a portable spectrometer device including a first fabric layer and a second fabric layer coupled to the first fabric layer to form a pouch. The second fabric layer includes a fiber fabric spectrometer substrate comprising a fiber material including one or more electronic devices, wherein the pouch is configured to receive a colorimetric substrate and the fiber fabric spectrometer substrate is configured to measure reflectance of a colorimetric substrate disposed in the pouch.
    Type: Grant
    Filed: August 21, 2020
    Date of Patent: July 4, 2023
    Assignee: Massachusetts Institute of Technology
    Inventors: Richard Kingsborough, Alexander Stolyarov, Shane Tysk, Lauren Cantley
  • Publication number: 20210362396
    Abstract: Methods of manufacturing multi-material fibers having one or more electrically-connectable devices disposed therein are described. In certain instances, the methods include the steps of: positioning the electrically-connectable device(s) within a corresponding pocket provided in a preform material; positioning a first electrical conductor longitudinally within a first conduit provided in the preform material; and drawing the multi-material fiber by causing the preform material to flow, such that the first electrical conductor extends within the multi-material fiber along a longitudinal axis thereof and makes an electrical contact with a first electrode located on each electrically-connectable device. A metallurgical bond may be formed between the first electrical conductor and the first electrode while drawing the multi-material fiber and/or, after drawing the multi-material fiber, the first electrical conductor may be located substantially along a neutral axis of the multi-material fiber.
    Type: Application
    Filed: April 21, 2021
    Publication date: November 25, 2021
    Inventors: Chia-Chun Chung, Jason Cox, Joshua Deisenhaus, Kristina McCarthy, Kristen Mulherin, Jimmy Nguyen, Michael Rein, Matthew Bernasconi, Lauren Cantley, Lalitha Parameswaran, Michael Rickley, Alexander Stolyarov
  • Patent number: 11120319
    Abstract: An article is a selected one of a set of articles. Each article of the set includes a fabric and is associated with a unique identification code. The selected article has a pattern distributed over at least 10% of an exposed surface of the selected article. The pattern encodes the identification code associated with the selected article, wherein the pattern is configured to be read and decoded by a mobile computing device in a manner wherein the selected article is contextually recognizable. A two-dimensional plaid pattern may be used to carry the identification code, which can be decoded according to described methods.
    Type: Grant
    Filed: June 28, 2019
    Date of Patent: September 14, 2021
    Assignee: Advanced Functional Fabrics of America, Inc.
    Inventors: Tairan Wang, Tosha Hays, Yoel Fink, Alexander Stolyarov, Mihai Ibanescu
  • Publication number: 20210192302
    Abstract: A fabric or article has a pattern on an exposed surface that encodes a unique identification code, wherein the pattern is configured to be read and decoded by a mobile computing device in a manner wherein the selected article is contextually recognizable. A two-dimensional plaid pattern may be used to carry the identification code, which can be decoded according to described methods. The pattern may be a plaid code or may be incorporated into a representational aesthetic environment. Fabrics may include optical transmitters embedded therein and configured to transmit information that can be detected by a mobile computing device, directed to the wearable article, and executing a suitable application. Fabrics may include optical receives configured to receive information such as from a free-space optical communication system of certain embodiments.
    Type: Application
    Filed: December 1, 2020
    Publication date: June 24, 2021
    Inventors: Tairan Wang, Yoel Fink, Carson Gee, Jason Cox, Tosha Hays, Alexander Stolyarov, Mihai Ibanescu
  • Publication number: 20210055228
    Abstract: Techniques are disclosed for a chemical sensor architecture based on a fabric-based spectrometer. An example apparatus implementing the techniques includes a portable spectrometer device including a first fabric layer and a second fabric layer coupled to the first fabric layer to form a pouch. The second fabric layer includes a fiber fabric spectrometer substrate comprising a fiber material including one or more electronic devices, wherein the pouch is configured to receive a colorimetric substrate and the fiber fabric spectrometer substrate is configured to measure reflectance of a colorimetric substrate disposed in the pouch.
    Type: Application
    Filed: August 21, 2020
    Publication date: February 25, 2021
    Inventors: Richard Kingsborough, Alexander Stolyarov, Shane Tysk, Lauren Cantley
  • Publication number: 20190325279
    Abstract: An article is a selected one of a set of articles. Each article of the set includes a fabric and is associated with a unique identification code. The selected article has a pattern distributed over at least 10% of an exposed surface of the selected article. The pattern encodes the identification code associated with the selected article, wherein the pattern is configured to be read and decoded by a mobile computing device in a manner wherein the selected article is contextually recognizable. A two-dimensional plaid pattern may be used to carry the identification code, which can be decoded according to described methods.
    Type: Application
    Filed: June 28, 2019
    Publication date: October 24, 2019
    Inventors: Tairan Wang, Tosha Hays, Yoel Fink, Alexander Stolyarov, Mihai Ibanescu
  • Patent number: 8442078
    Abstract: The laser includes an optical fiber including a cavity containing a microfluidic gain medium bounded by a composite structure of alternating layers of high and low index materials forming an axially invariant, rotationally symmetric photonic bandgap cavity. The optical fiber also includes at least one microfluidic channel containing liquid crystal modulators in the fiber cladding extending in an axial direction and further includes a pair of electrodes flanking the microfluidic channel. An electrical potential across the pair of electrodes will rotate the liquid crystal molecules to rotate the linearly polarized state of light emitted from the cavity. An external linear polarizer is disposed around the fiber to modulate azimuthal laser intensity distribution.
    Type: Grant
    Filed: December 12, 2011
    Date of Patent: May 14, 2013
    Assignee: Massachusetts Institute of Technology
    Inventors: Alexander Stolyarov, Lei Wei, Ofer Shapira, Fabien Sorin, Yoel Fink, John D. Joannopoulos
  • Patent number: 7970022
    Abstract: In one aspect, the disclosure features an article, including a fiber waveguide extending along a waveguide axis, the fiber waveguide including a core extending along the waveguide axis and a confinement region surrounding the core. The confinement region is configured to guide radiation at a first wavelength, ?1, along the waveguide axis and is configured to transmit at least some of the radiation at a second wavelength, ?2, incident on the confinement region along a path, where ?1 and ?2 are different. The core includes a core material selected to interact with radiation at ?1 to produce radiation at ?2.
    Type: Grant
    Filed: January 19, 2007
    Date of Patent: June 28, 2011
    Assignee: Massachusetts Institute of Technology
    Inventors: Ofer Shapira, Ken Kuriki, Nicholas D. Orf, John D Joannopoulos, Yoel Fink, Alexander Stolyarov
  • Publication number: 20090207867
    Abstract: In one aspect, the disclosure features an article, including a fiber waveguide extending along a waveguide axis, the fiber waveguide including a core extending along the waveguide axis and a confinement region surrounding the core. The confinement region is configured to guide radiation at a first wavelength, ?1, along the waveguide axis and is configured to transmit at least some of the radiation at a second wavelength, ?2, incident on the confinement region along a path, where ?1 and ?2 are different. The core includes a core material selected to interact with radiation at ?1 to produce radiation at ?2.
    Type: Application
    Filed: January 19, 2007
    Publication date: August 20, 2009
    Inventors: Ofer Shapira, Ken Kuriki, Nicholas D. Orf, John D. Joannopoulos, Yoel Fink, Alexander Stolyarov