Patents by Inventor Stephen Anthony Payne

Stephen Anthony Payne 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: 20230283036
    Abstract: An optical amplifier comprises a gain medium having an input surface and an output surface wherein the output surface is larger than the input surface. The gain medium may be frustum shaped. The optical amplifier includes a negative diverging lens to receive an extraction laser beam and to cause the laser beam to expand as the beam passes through the gain medium. The amplifier further comprises a positive collimating lens configured to receive the expanding amplified beam and reduce the divergence. The gain medium can be pumped by counter-propagating radiation. The fluence of the laser beam within the gain medium is configured to be near constant along the length of the gain medium and may be within 1.5-2.0 FSAT. The gain medium may be doped with dopant to provide gain, with larger concentration of dopants proximal the input surface and smaller concentration proximal the output surface.
    Type: Application
    Filed: March 4, 2022
    Publication date: September 7, 2023
    Inventors: Stephen Anthony Payne, Raymond Beach, Jean-Michel Di Nicola, Alvin Erlandson, John Heebner, Jeremy Lusk, William A. Molander, Samuel Edward Schrauth, Jen Nan Wong
  • Patent number: 11725137
    Abstract: A plastic scintillator includes a polymer matrix, an aliphatic additive present in the polymer matrix in an effective amount to impart fog resistance to the plastic scintillator, and at least one fluorescent dye in the polymer matrix, the dye being effective to provide scintillation upon exposure to radiation. The effective amount of the aliphatic additive is in a range of greater than 0 weight percent up to 5 weight percent relative to the total weight of the plastic scintillator. Moreover, the aliphatic additive has a structure comprising up to 300 repeat units.
    Type: Grant
    Filed: April 29, 2021
    Date of Patent: August 15, 2023
    Assignees: Lawrence Livermore National Security, LLC, Ludlum Measurements, Inc., National Technology & Engineering Solutions of Sandia, LLC
    Inventors: Andrew Neil Mabe, M Leslie Carman, Stephen Anthony Payne, Natalia P. Zaitseva, Charles R. Hurlbut, Terence C. O'Brien, Kyle Ray Shipp, Nicholas Richard Myllenbeck
  • Publication number: 20230110835
    Abstract: A method for forming a transparent ceramic, in accordance with one embodiment, includes forming a green body by material jetting an ink, and processing the green body to form the ceramic to transparency. A product, in accordance with one embodiment, includes an ink for forming a transparent ceramic. The ink is physically characterized as having a density, surface tension, and viscosity configured to enable material jetting of the ink in contained, sequential droplets having a volume in the range of about 1 picoliter to about 1 nanoliter when jetted from a nozzle having an inner diameter in the range of about 10 microns to about 300 microns. A product, in accordance with another embodiment, includes a transparent ceramic, at least a portion of the transparent ceramic having layers of less than 50 microns per layer with physical characteristics of formation by material jetting.
    Type: Application
    Filed: October 12, 2022
    Publication date: April 13, 2023
    Inventors: Zachary Seeley, Nerine Cherepy, Alexander Drobshoff, Stephen Anthony Payne, Ian Robert Phillips, Thomas John Rudzik
  • Publication number: 20210340437
    Abstract: A plastic scintillator includes a polymer matrix, an aliphatic additive present in the polymer matrix in an effective amount to impart fog resistance to the plastic scintillator, and at least one fluorescent dye in the polymer matrix, the dye being effective to provide scintillation upon exposure to radiation. The effective amount of the aliphatic additive is in a range of greater than 0 weight percent up to 5 weight percent relative to the total weight of the plastic scintillator. Moreover, the aliphatic additive has a structure comprising up to 300 repeat units.
    Type: Application
    Filed: April 29, 2021
    Publication date: November 4, 2021
    Applicants: Lawrence Livermore National Security, LLC, National Technology & Engineering Solutions of Sandia, LLC, Ludlum Measurements, Inc., National Technology & Engineering Solutions of Sandia, LLC
    Inventors: Andrew Neil Mabe, M Leslie Carman, Stephen Anthony Payne, Natalia P. Zaitseva, Charles R. Hurlbut, Terence C. O'Brien, Kyle Ray Shipp, Nicholas Richard Myllenbeck
  • Patent number: 9255995
    Abstract: According to one embodiment, a scintillator radiation detector system includes a scintillator, and a processing device for processing pulse traces corresponding to light pulses from the scintillator, where the processing device is configured to: process each pulse trace over at least two temporal windows and to use pulse digitization to improve energy resolution of the system. According to another embodiment, a scintillator radiation detector system includes a processing device configured to: fit digitized scintillation waveforms to an algorithm, perform a direct integration of fit parameters, process multiple integration windows for each digitized scintillation waveform to determine a correction factor, and apply the correction factor to each digitized scintillation waveform.
    Type: Grant
    Filed: October 27, 2014
    Date of Patent: February 9, 2016
    Assignee: Lawrence Livermore National Security, LLC
    Inventors: Nerine Jane Cherepy, Stephen Anthony Payne, Owen B. Drury, Benjamin W. Sturm
  • Publication number: 20150219770
    Abstract: According to one embodiment, a scintillator radiation detector system includes a scintillator, and a processing device for processing pulse traces corresponding to light pulses from the scintillator, where the processing device is configured to: process each pulse trace over at least two temporal windows and to use pulse digitization to improve energy resolution of the system. According to another embodiment, a scintillator radiation detector system includes a processing device configured to: fit digitized scintillation waveforms to an algorithm, perform a direct integration of fit parameters, process multiple integration windows for each digitized scintillation waveform to determine a correction factor, and apply the correction factor to each digitized scintillation waveform.
    Type: Application
    Filed: October 27, 2014
    Publication date: August 6, 2015
    Inventors: Nerine Jane Cherepy, Stephen Anthony Payne, Owen B. Drury, Benjamin W. Sturm
  • Patent number: 8884233
    Abstract: A scintillator radiation detector system according to one embodiment includes a scintillator; and a processing device for processing pulse traces corresponding to light pulses from the scintillator, wherein pulse digitization is used to improve energy resolution of the system. A scintillator radiation detector system according to another embodiment includes a processing device for fitting digitized scintillation waveforms to an algorithm based on identifying rise and decay times and performing a direct integration of fit parameters. A method according to yet another embodiment includes processing pulse traces corresponding to light pulses from a scintillator, wherein pulse digitization is used to improve energy resolution of the system. A method in a further embodiment includes fitting digitized scintillation waveforms to an algorithm based on identifying rise and decay times; and performing a direct integration of fit parameters. Additional systems and methods are also presented.
    Type: Grant
    Filed: November 5, 2010
    Date of Patent: November 11, 2014
    Assignee: Lawrence Livermore National Security, LLC.
    Inventors: Nerine Jane Cherepy, Stephen Anthony Payne, Owen B. Drury, Benjamin W. Sturm
  • Patent number: 8698086
    Abstract: A scintillator material according to one embodiment includes a bismuth-loaded aromatic polymer having an energy resolution at 662 keV of less than about 10%. A scintillator material according to another embodiment includes a bismuth-loaded aromatic polymer having a fluor incorporated therewith and an energy resolution at 662 keV of less than about 10%. Additional systems and methods are also presented.
    Type: Grant
    Filed: June 16, 2011
    Date of Patent: April 15, 2014
    Assignee: Lawrence Livermore National Security, LLC
    Inventors: Nerine Jane Cherepy, Robert Dean Sanner, Stephen Anthony Payne, Benjamin Lee Rupert, Benjamin Walter Sturm
  • Publication number: 20120153164
    Abstract: A scintillator radiation detector system according to one embodiment includes a scintillator; and a processing device for processing pulse traces corresponding to light pulses from the scintillator, wherein pulse digitization is used to improve energy resolution of the system. A scintillator radiation detector system according to another embodiment includes a processing device for fitting digitized scintillation waveforms to an algorithm based on identifying rise and decay times and performing a direct integration of fit parameters. A method according to yet another embodiment includes processing pulse traces corresponding to light pulses from a scintillator, wherein pulse digitization is used to improve energy resolution of the system. A method in a further embodiment includes fitting digitized scintillation waveforms to an algorithm based on identifying rise and decay times; and performing a direct integration of fit parameters. Additional systems and methods are also presented.
    Type: Application
    Filed: November 5, 2010
    Publication date: June 21, 2012
    Applicant: Lawrence Livermore National Security, LLC
    Inventors: Nerine Jane Cherepy, Stephen Anthony Payne, Owen B. Drury, Benjamin W. Sturm
  • Publication number: 20110315885
    Abstract: A scintillator material according to one embodiment includes a bismuth-loaded aromatic polymer having an energy resolution at 662 keV of less than about 10%. A scintillator material according to another embodiment includes a bismuth-loaded aromatic polymer having a fluor incorporated therewith and an energy resolution at 662 keV of less than about 10%. Additional systems and methods are also presented.
    Type: Application
    Filed: June 16, 2011
    Publication date: December 29, 2011
    Applicant: LAWRENCE LIVERMORE NATIONAL SECURITY, LLC
    Inventors: Nerine Jane Cherepy, Robert Dean Sanner, Stephen Anthony Payne, Benjamin Lee Rupert, Benjamin Walter Sturm