Patents by Inventor Pamela R. Patterson
Pamela R. Patterson 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).
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Publication number: 20200088845Abstract: A Lidar system, photonic chip and method of detecting an object is disclosed. The Lidar system includes the photonic chip. The photonic chip includes a laser and a local oscillator waveguide. The laser is integrated into the photonic chip and generates a leakage energy at a back facet of the laser for use as a local oscillator beam for the photonic chip. The local oscillator waveguide receives the leakage energy as the local oscillator beam. The laser further generates a transmitted light beam through a front facet of the photonic chip, combining the leakage energy with a reflection of the transmitted light beam form an object, and detects a combination of the reflected light beam and the leakage energy to determine a parameter of the object.Type: ApplicationFiled: August 29, 2019Publication date: March 19, 2020Inventors: Timothy J. Talty, Oleg Efimov, Michael Mulqueen, Keyvan Sayyah, Pamela R. Patterson, Raymond Sarkissian, James H. Schaffner, David Hammon, Biqin Huang
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Publication number: 20200049801Abstract: A chip-scale LIDAR (light detection and ranging) system, optical package and LIDAR platform. The system includes a photonic chip, a laser associated with the photonic chip, an optical circulator, and a MEMS scanner. The laser, the optical circulator and the MEMS scanner are collinear. The photonic chip includes an edge coupler. The optical package includes a housing having an aperture, and a platform within the housing. The platform includes the laser, an optical circulator, and MEMS scanner.Type: ApplicationFiled: August 9, 2018Publication date: February 13, 2020Inventors: Keyvan Sayyah, Pamela R. Patterson, Raymond Sarkissian, Richard Kremer, Oleg Efimov
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Patent number: 10515872Abstract: A transistor having an emitter, a base, and a collector, the transistor includes a substrate, a collector contact, a metallic sub-collector coupled to the collector contact, and the metallic sub-collector electrically and thermally coupled to the collector, and an adhesive layer between the substrate and the metallic sub-collector, the adhesive layer bonded to the substrate and in direct contact with the substrate and bonded to the metallic sub-collector and in direct contact with the metallic sub-collector, wherein the adhesive layer comprises an electrically conductive material.Type: GrantFiled: October 20, 2016Date of Patent: December 24, 2019Assignee: HRL Laboratories, LLCInventors: James Chingwei Li, Yakov Royter, Pamela R. Patterson, Donald A. Hitko
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Publication number: 20190235163Abstract: A method of manufacturing an optical waveguide includes: aligning a silicon on insulator wafer and a target substrate, the target substrate including a benzocyclobutene layer; bonding a silicon layer of the silicon on insulator wafer with the benzocyclobutene layer of the target substrate by using heat and pressure; and removing the silicon on insulator wafer such that the silicon layer remains on the benzocyclobutene layer.Type: ApplicationFiled: November 9, 2018Publication date: August 1, 2019Inventors: Pamela R. Patterson, Raymond Sarkissian, Biqin Huang, Keyvan R. Sayyah, Oleg M. Efimov
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Publication number: 20190052047Abstract: A method of manufacturing a LIDAR chip and applying an anti-reflection (AR) coating to a coupling structure of the LIDAR chip. The coupling structure if formed on a wafer. A pocket is formed in the wafer adjacent the coupling structure. The AR material is deposited on top of the wafer and coupling structure. The AR material is etched to form the AR coating on the coupling structure.Type: ApplicationFiled: June 26, 2018Publication date: February 14, 2019Inventors: Keyvan Sayyah, Pamela R. Patterson, Biqin Huang
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Publication number: 20190018139Abstract: A chip-scale coherent lidar system includes a master oscillator integrated on a chip to simultaneously provide a signal for transmission and a local oscillator (LO) signal. The system also includes a beam steering device to direct an output signal obtained from the signal for transmission out of the system, and a combiner on the chip to combine the LO signal and a return signal resulting from a reflection of the output signal by a target. One or more photodetectors obtain a result of interference between the LO signal and the return signal to determine information about the target.Type: ApplicationFiled: April 20, 2018Publication date: January 17, 2019Inventors: Keyvan Sayyah, Raymond Sarkissian, Oleg Efimov, Pamela R. Patterson
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Publication number: 20190018198Abstract: A photonic chip, an edge coupler for an integrated photonic system and a method for coupling a laser to the photonic chip. The edge coupler includes a waveguide of the photonic system having a longitudinal axis. The longitudinal axis of a waveguide of the photonic chip is aligned with a longitudinal axis of the laser. The facet of the waveguide facing the laser is at a non-perpendicular angle with respect to the longitudinal axis. Light is transmitted from the laser into the waveguide via the angled facet.Type: ApplicationFiled: June 27, 2018Publication date: January 17, 2019Inventors: Keyvan Sayyah, Oleg Efimov, Pamela R. Patterson, Raymond Sarkissian, Biqin Huang
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Publication number: 20190018114Abstract: A lidar system includes a photonic chip including a light source and a transmit beam coupler to provide an output signal for transmission. The output signal is a frequency modulated continuous wave (FMCW) signal. A transmit beam steering device transmits the output signal from the transmit beam coupler of the photonic chip. A receive beam steering device obtains a reflection of the output signal by a target and provides the reflection as a received signal to a receive beam coupler of the photonic chip. The photonic chip, the transmit beam steering device, and the receive beam steering device are heterogeneously integrated into an optical engine.Type: ApplicationFiled: June 27, 2018Publication date: January 17, 2019Inventors: Pamela R. Patterson, Biqin Huang, James H. Schaffner, Keyvan Sayyah, Oleg Efimov, Raymond Sarkissian
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Publication number: 20190018113Abstract: A LIDAR system, LIDAR chip and method of manufacturing a LIDAR chip. The LIDAR system includes a photonic chip configured to transmit a transmitted light beam and to receive a reflected light beam, a scanner for directing the transmitted light beam towards a direction in space and receiving the reflected light beam from the selected direction, and a fiber-based optical coupler. The photonic chip and the scanner are placed on a semiconductor integrated platform (SIP). The fiber-based optical coupler is placed on top of the photonic chip to optically couple to the photonic chip for directing the a transmitted light beam from the photonic chip to the scanner and for directing a reflected light beam from the scanner to the photonic chip.Type: ApplicationFiled: June 26, 2018Publication date: January 17, 2019Inventors: Keyvan Sayyah, Oleg Efimov, Pamela R. Patterson, Raymond Sarkissian, James H. Schaffner, Biqin Huang, David Hammon
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Publication number: 20190018121Abstract: A lidar system includes a light source to generate a frequency modulated continuous wave (FMCW) signal, and a waveguide splitter to split the FMCW signal into an output signal and a local oscillator (LO) signal. A transmit coupler provides the output signal for transmission. A receive lens obtains a received signal resulting from reflection of the output signal by a target. A waveguide coupler combines the received signal and the LO signal into a first combined signal and a second combined signal. A first phase modulator and second phase modulator respectively adjust a phase of the first combined signal and the second combined signal to provide a first phase modulated signal and a second phase modulated signal to a first photodetector and a second photodetector. A processor processes a first electrical signal and a second electrical signal from the first and second photodetectors to obtain information about the target.Type: ApplicationFiled: June 25, 2018Publication date: January 17, 2019Inventors: Keyvan Sayyah, Oleg Efimov, Pamela R. Patterson, Raymond Sarkissian, James H. Schaffner, Biqin Huang, David Hammon
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Publication number: 20180356528Abstract: A continuous wave (CW) heterodyne light detection and ranging (LIDAR) air velocity sensor system that comprises a first light emitting structure arranged to send a signal light in a first direction in space; a second light emitting structure arranged to produce a local oscillator light having a wavelength different from the wavelength of the signal light by a predetermined wavelength; a receiver arranged to receive light from said first direction in space; and a first optical mixer for mixing the received light with said local oscillator light.Type: ApplicationFiled: April 6, 2018Publication date: December 13, 2018Applicant: HRL Laboratories, LLCInventors: James H. Schaffner, Richard M. Kremer, Raymond Sarkissian, Andrew C. Keefe, Pamela R. Patterson, Erik S. Daniel, Brian N. Limketkai, Guillermo A. Herrera, Keyvan R. Sayyah, Oleg M. Eimov
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Patent number: 9972905Abstract: A reconfigurable electro-magnetic tile includes a laser layer including a plurality of lasers, and a pixelated surface comprising a plurality of metal patches and a plurality of switches, wherein each respective switch of the plurality of switches is in a gap between a first respective metal patch and a second respective metal patch, wherein each respective switch is optically coupled to at least one respective laser of the plurality of lasers, and wherein each switch of the plurality of switches comprises a phase change material.Type: GrantFiled: February 9, 2015Date of Patent: May 15, 2018Assignee: HRL Laboratories, LLCInventors: James H. Schaffner, Hyok J. Song, Keyvan R. Sayyah, Pamela R. Patterson, Jeong-Sun Moon, Alan E. Reamon, Keerti S. Kona, Joseph S. Colburn
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Patent number: 9800018Abstract: A chip scale ultra violet laser source includes a plurality of laser elements on a substrate each including a back cavity mirror, a tapered gain medium, an outcoupler, a nonlinear crystal coupled to the outcoupler with a front facet that has a first coating that is anti-reflectivity (AR) to a fundamental wavelength of the laser element and high reflectivity (HR) to ultra violet wavelengths, and has an exit facet that has a second coating that has HR to a fundamental wavelength of the laser element and AR to the ultra violet wavelengths, a photodetector coupled to the outcoupler, a phase modulator coupled to the photodetector and coupled to the back cavity mirror, and a master laser diode on the substrate coupled to the phase modulator of each laser element. Each laser element emits an ultra violet beamlet and is frequency and phase locked to the master laser diode.Type: GrantFiled: February 19, 2016Date of Patent: October 24, 2017Assignee: HRL Laboratories, LLCInventors: Keyvan Sayyah, Oleg M. Efimov, Pamela R. Patterson, Andrey A. Kiselev
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Patent number: 9733544Abstract: A tunable metamaterial has a two dimensional array of resonant annular ring elements; and a plurality of voltage controllable electrical tuning elements disposed in or adjacent openings in each of said ring elements, each of said voltage controllable electrical tuning element ohmically contacting portions of only one of said ring elements. The voltage controllable electrical tuning elements may comprise highly doped semiconductor tunnel diodes, or the charge accumulation layer at the semiconductor/insulator interface of a metal-insulator-semiconductor structure, or nanoelectromechanical (NEMs) capacitors. The tunable metamaterial may be used, for example, in an optical beam steering device using the aforementioned tunable optical metamaterial in which a free-space optical beam is coupled into a receiving portion of a plane of the optical metamaterial and is steered out of a transmitter portion of the plane of the optical metamaterial in controllable azimuthal and elevational directions.Type: GrantFiled: November 4, 2014Date of Patent: August 15, 2017Assignee: HRL Laboratories, LLCInventors: Keyvan Sayyah, James H. Schaffner, Pamela R. Patterson
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Patent number: 9691761Abstract: A compound semiconductor integrated circuit comprising a first substrate; a first electronic component formed on top of said first substrate; a layer of a first dielectric material formed on top of said first substrate and including said first electronic component, said layer of a first dielectric material comprising a recess exposing a first region of said first substrate; and a layer of a second dielectric material attached to said first substrate on top of said first region of said first substrate after manufacturing of said layer of a second dielectric material, said layer of a second material comprising a second electronic component.Type: GrantFiled: October 26, 2016Date of Patent: June 27, 2017Assignee: HRL Laboratories, LLCInventors: Pamela R. Patterson, Keisuke Shinohara, Hasan Sharifi, Wonill Ha, Tahir Hussain, James Chingwei Li, Dana C. Wheeler
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Patent number: 9515068Abstract: A compound semiconductor integrated circuit comprising a first substrate; a first electronic component formed on top of said first substrate; a layer of a first dielectric material formed on top of said first substrate and including said first electronic component, said layer of a first dielectric material comprising a recess exposing a first region of said first substrate; and a layer of a second dielectric material attached to said first substrate on top of said first region of said first substrate after manufacturing of said layer of a second dielectric material, said layer of a second material comprising a second electronic component.Type: GrantFiled: August 29, 2013Date of Patent: December 6, 2016Assignee: HRL Laboratories, LLCInventors: Pamela R. Patterson, Keisuke Shinohara, Hasan Sharifi, Wonill Ha, Tahir Hussain, James Chingwei Li, Dana C. Wheeler
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Patent number: 9508552Abstract: A heterojunction bipolar transistor having an emitter, a base, and a collector, the heterojunction bipolar transistor including a metallic sub-collector electrically and thermally coupled to the collector wherein the metallic sub-collector comprises a metallic thin film, and a collector contact electrically connected to the metallic sub-collector.Type: GrantFiled: September 9, 2014Date of Patent: November 29, 2016Assignee: HRL Laboratories, LLCInventors: James Chingwei Li, Donald A. Hitko, Yakov Royter, Pamela R. Patterson
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Publication number: 20160248225Abstract: A chip scale ultra violet laser source includes a plurality of laser elements on a substrate each including a back cavity mirror, a tapered gain medium, an outcoupler, a nonlinear crystal coupled to the outcoupler with a front facet that has a first coating that is anti-reflectivity (AR) to a fundamental wavelength of the laser element and high reflectivity (HR) to ultra violet wavelengths, and has an exit facet that has a second coating that has HR to a fundamental wavelength of the laser element and AR to the ultra violet wavelengths, a photodetector coupled to the outcoupler, a phase modulator coupled to the photodetector and coupled to the back cavity mirror, and a master laser diode on the substrate coupled to the phase modulator of each laser element. Each laser element emits an ultra violet beamlet and is frequency and phase locked to the master laser diode.Type: ApplicationFiled: February 19, 2016Publication date: August 25, 2016Applicant: HRL Laboratories, LLCInventors: Keyvan SAYYAH, Oleg M. EFIMOV, Pamela R. PATTERSON, Andrey A. KISELEV
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Patent number: 9310471Abstract: A chip-scale scanning lidar includes a two dimensional (2D) scanning micromirror for a transmit beam and a 2D scanning micromirror for a receive beam, a laser diode and a photodetector, a first waveguide and first grating outcoupler coupled to a front facet of the laser diode, a second waveguide and a second grating outcoupler coupled to a rear facet of the laser diode on a substrate. A first fixed micromirror, a second micromirror, a third micromirror, and a focusing component are in a dielectric layer bonded to the substrate over the laser diode and photodetector. The photodetector is optically coupled to the second fixed micromirror and the third fixed micromirror for coherent detection.Type: GrantFiled: June 27, 2014Date of Patent: April 12, 2016Assignee: HRL Laboratories, LLCInventors: Keyvan Sayyah, Pamela R. Patterson, Oleg M. Efimov
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Publication number: 20160013549Abstract: A reconfigurable electro-magnetic tile includes a laser layer including a plurality of lasers, and a pixelated surface comprising a plurality of metal patches and a plurality of switches, wherein each respective switch of the plurality of switches is in a gap between a first respective metal patch and a second respective metal patch, wherein each respective switch is optically coupled to at least one respective laser of the plurality of lasers, and wherein each switch of the plurality of switches comprises a phase change material.Type: ApplicationFiled: February 9, 2015Publication date: January 14, 2016Applicant: HRL LABORATORIES LLCInventors: James H. SCHAFFNER, Hyok J. Song, Keyvan R. Sayyah, Pamela R. Patterson, Jeong-Sun Moon, Alan E. Reamon, Keerti S. Kona, Joseph S. Colburn