Patents by Inventor Parham Porsandeh Khial
Parham Porsandeh Khial 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: 12114057Abstract: A lens-less imaging device, includes, in part, a multitude of pixels each having a light detector and an associated optical element adapted to cause the pixel to be responsive to a different direction of light received from a target. Each pixel has a field of view that overlaps with a field of view of at least a subset of the remaining pixels. The optical element may be a transparent dielectric element, a transparent MEMS component, a transparent microlens, or include one or more metallic walls. The optical element may be a continuous mapping layer formed over the pixels. Each pixel may or may not have a Gaussian distribution response. The lens-less imaging device forms an image of a target in accordance with an optical transfer functions of the pixels as well as responses of the pixels to the light received from the target.Type: GrantFiled: July 23, 2018Date of Patent: October 8, 2024Assignee: California Institute of TechnologyInventors: Seyed Ali Hajimiri, Seyed Mohammadreza Fatemi, Aroutin Khachaturian, Parham Porsandeh Khial, Alexander D. White
-
Publication number: 20240039638Abstract: A complex-wavefront photonic transceiver including a coherent source; a complex transmitter waveform generator programmable to modulate a first portion of the coherent electromagnetic radiation, when received from the coherent source, to form a complex waveform comprising at least a pre-distortion to compensate for, or an adaptive beamforming to determine, a distortion of the complex waveform caused by at least the transceiver or during transmission of the complex waveform to a receiver aperture, the receiver aperture outputting receiver signals in response thereto; and a transmitter aperture for transmitting the complex waveform when received from the complex transmitter waveform generator. The transceiver further includes a receiver processor programmable to determine a phase and amplitude of the complex waveform, when received on the receiver aperture, from a combination of the received signals with a second portion of the electromagnetic radiation.Type: ApplicationFiled: August 1, 2023Publication date: February 1, 2024Applicant: California Institute of TechnologyInventors: Aroutin Khachaturian, Parham Porsandeh Khial, Seyed Ali Hajimiri
-
Patent number: 11882371Abstract: A lens-less 3-D imaging device includes, in part, a multitude of optical receiving elements positioned along a concave or flat surface defining a focal zone of the imaging device. Each optical receiving element has a field of view that overlaps with a field of view of a number of other optical receiving elements. The optical receiving elements may optionally be grating couplers or photo detectors. The optical receiving elements may be disposed on a circuit board. The circuit board may be flexible and include control circuitry configured to form the image in accordance with the received responses of the optical receiving elements and further in accordance with the optical transfer functions of the of optical receiving elements. The circuit boards may include one or more flex sensors or strain gauges adapted to determine their curvatures.Type: GrantFiled: August 13, 2018Date of Patent: January 23, 2024Assignee: California Institute of TechnologyInventors: Alexander D. White, Parham Porsandeh Khial, Seyed Ali Hajimiri
-
Publication number: 20230324551Abstract: An adaptive LiDAR includes, in part, a transmitter and a receiver. The transmitter includes, in part, an array of N radiators, and a transmitter control block adapted to control an aperture of the transmitter. The receiver includes, in part, an array of T receive elements, and a receiver control block adapted to control a scan rate and resolution of the receiver. M and T are integers greater than one.Type: ApplicationFiled: March 28, 2023Publication date: October 12, 2023Inventors: Aroutin Khachaturian, Parham Porsandeh Khial, Seyed Ali Hajimiri
-
Patent number: 11601183Abstract: Spatial redistributors and methods of redistributing signals in accordance with various embodiments of the invention are illustrated. One embodiment includes an array of channels configured to receive and retransmit a signal, where each of a plurality of independently operating channels in the array includes: at least one antenna element; an RF chain configured to apply at least a time delay to the received signal prior to retransmission; control circuitry configured to control the time delay applied to the received signal by the RF chain; and a reference oscillator. In addition, the array of channels is configured to redirect a signal received from a first set of directions for retransmission in a second set of directions; and the control circuitry of the channels in the array of channels coordinates the time delays applied to the received signal across the array of channels to control the wave front of the retransmitted signal.Type: GrantFiled: December 20, 2019Date of Patent: March 7, 2023Assignee: California Institute of TechnologyInventors: Seyed Ali Hajimiri, Austin C. Fikes, Parham Porsandeh Khial
-
Patent number: 11131546Abstract: An optical gyroscope includes, in part, an optical switch, a pair of optical rings and a pair of photodetectors. The optical switch supplies a laser beam. The first optical ring delivers a first portion of the beam in a clockwise direction during the first half of a period, and a first portion of the beam in a counter clockwise direction during the second half of the period. The second optical ring delivers a second portion of the beam in a counter clockwise direction during the first half of the period, and a second portion of the beam in a clockwise direction during the second half of the period. The first photodetector receives the beams delivered by the first and second optical rings during the first half of the period. The second photodetector receives the beams delivered by the first and second optical rings during the second half of the period.Type: GrantFiled: December 3, 2019Date of Patent: September 28, 2021Assignee: CALIFORNIA INSTITUTE OF TECHNOLOGYInventors: Parham Porsandeh Khial, Seyed Ali Hajimiri
-
Publication number: 20210105092Abstract: Scalable decentralized redistributors and methods of redistributing signals in accordance with various embodiments of the invention are illustrated. One embodiment includes an array of channels configured to receive and retransmit a signal, where each of a plurality of independently operating channels in the array includes: at least one antenna element; an RF chain configured to apply a time delay to the received signal prior to retransmission; control circuitry configured to control the time delay applied to the received signal by the RF chain; and a reference oscillator. In addition, the array of channels is configured to steer a signal of a first frequency in a first direction and steer a signal of a second frequency in a second direction different from the first direction to create a dual beam redistributor.Type: ApplicationFiled: December 15, 2020Publication date: April 8, 2021Applicant: California Institute of TechnologyInventors: Seyed Ali Hajimiri, Austin C. Fikes, Parham Porsandeh Khial, Samir Nooshabadi
-
Patent number: 10948296Abstract: An optical gyroscope includes, in part, an optical switch, a pair of spiral optical rings and a pair of photodetectors. The optical switch supplies a laser beam. The first spiral optical ring delivers a first portion of the beam in a clockwise direction during the first half of a period, and a first portion of the beam in a counter clockwise direction during the second half of the period. The second spiral optical ring delivers a second portion of the beam in a counter clockwise direction during the first half of the period, and a second portion of the beam in a clockwise direction during the second half of the period. The first photodetector receives the beams delivered by the first and second optical rings during the first half of the period. The second photodetector receives the beams delivered by the first and second optical rings during the second half of the period.Type: GrantFiled: August 2, 2019Date of Patent: March 16, 2021Assignee: CALIFORNIA INSTITUTE OF TECHNOLOGYInventors: Alexander D. White, Parham Porsandeh Khial, Seyed Ali Hajimiri
-
Publication number: 20200278207Abstract: An optical gyroscope includes, in part, an optical switch, a pair of optical rings and a pair of photodetectors. The optical switch supplies a laser beam. The first optical ring delivers a first portion of the beam in a clockwise direction during the first half of a period, and a first portion of the beam in a counter clockwise direction during the second half of the period. The second optical ring delivers a second portion of the beam in a counter clockwise direction during the first half of the period, and a second portion of the beam in a clockwise direction during the second half of the period. The first photodetector receives the beams delivered by the first and second optical rings during the first half of the period. The second photodetector receives the beams delivered by the first and second optical rings during the second half of the period.Type: ApplicationFiled: December 3, 2019Publication date: September 3, 2020Inventors: Parham Porsandeh Khial, Seyed Ali Hajimiri
-
Patent number: 10727586Abstract: A communicate device includes transmitters and a receiver. The first transmitter is coupled to a first 90° phase shifter that is also coupled to a first antenna, and to a second 90° phase shifter that is also coupled to a first node. The second transmitter is coupled to a third 90° phase shifter that is also coupled to a second antenna, and to a fourth 90° phase shifter that is also coupled to the first node. The receiver is coupled to a fifth 90° phase shifter that is also coupled to the first antenna, and to a sixth 90° phase shifter that is also coupled to the second antenna. A non-reciprocal element, coupled between the receiver and the first node, provides a 90° phase shift from the receiver to the first node and a ?90° phase shift from the first node to the receiver.Type: GrantFiled: July 17, 2019Date of Patent: July 28, 2020Assignee: California Institute of TechnologyInventors: Parham Porsandeh Khial, Seyed Mohammadreza Fatemi, Alexander D. White, Seyed Ali Hajimiri
-
Publication number: 20200204244Abstract: Spatial redistributors and methods of redistributing signals in accordance with various embodiments of the invention are illustrated. One embodiment includes an array of channels configured to receive and retransmit a signal, where each of a plurality of independently operating channels in the array includes: at least one antenna element; an RF chain configured to apply at least a time delay to the received signal prior to retransmission; control circuitry configured to control the time delay applied to the received signal by the RF chain; and a reference oscillator. In addition, the array of channels is configured to redirect a signal received from a first set of directions for retransmission in a second set of directions; and the control circuitry of the channels in the array of channels coordinates the time delays applied to the received signal across the array of channels to control the wave front of the retransmitted signal.Type: ApplicationFiled: December 20, 2019Publication date: June 25, 2020Applicant: Califormia Institute of TechnologyInventors: Seyed Ali Hajimiri, Austin C. Fikes, Parham Porsandeh Khial
-
Publication number: 20200099131Abstract: A communicate device includes transmitters and a receiver. The first transmitter is coupled to a first 90° phase shifter that is also coupled to a first antenna, and to a second 90° phase shifter that is also coupled to a first node. The second transmitter is coupled to a third 90° phase shifter that is also coupled to a second antenna, and to a fourth 90° phase shifter that is also coupled to the first node. The receiver is coupled to a fifth 90° phase shifter that is also coupled to the first antenna, and to a sixth 90° phase shifter that is also coupled to the second antenna. A non-reciprocal element, coupled between the receiver and the first node, provides a 90° phase shift from the receiver to the first node and a ?90° phase shift from the first node to the receiver.Type: ApplicationFiled: July 17, 2019Publication date: March 26, 2020Inventors: Parham Porsandeh Khial, Seyed Mohammadreza Fatemi, Alexander D. White, Seyed Ali Hajimiri
-
Patent number: 10598785Abstract: An image capture device includes, in part, N optical transmit antennas forming a first array, N phase modulators each associated with and adapted to control a phase of a different one of the transmit antennas, M optical receive antennas forming a second array, M phase modulators each associated with and adapted to control a phase of a different one of the receive antennas, and a controller adapted to control phases of the first and second plurality of phase modulators to capture an image of an object. The first and second arrays may be one-dimensional arrays positioned substantially orthogonal to one another. Optionally, the first array is a circular array of transmitters, and the second array is a one-dimensional array of receivers positioned in the same plane as that in which the circular array of the transmitters is disposed.Type: GrantFiled: February 13, 2017Date of Patent: March 24, 2020Assignee: CALIFORNIA INSTITUTE OF TECHNOLOGYInventors: Parham Porsandeh Khial, Aroutin Khachaturian, Seyed Ali Hajimiri
-
Publication number: 20200041270Abstract: An optical gyroscope includes, in part, an optical switch, a pair of spiral optical rings and a pair of photodetectors. The optical switch supplies a laser beam. The first spiral optical ring delivers a first portion of the beam in a clockwise direction during the first half of a period, and a first portion of the beam in a counter clockwise direction during the second half of the period. The second spiral optical ring delivers a second portion of the beam in a counter clockwise direction during the first half of the period, and a second portion of the beam in a clockwise direction during the second half of the period. The first photodetector receives the beams delivered by the first and second optical rings during the first half of the period. The second photodetector receives the beams delivered by the first and second optical rings during the second half of the period.Type: ApplicationFiled: August 2, 2019Publication date: February 6, 2020Inventors: Alexander D. White, Parham Porsandeh Khial, Seyed Ali Hajimiri
-
Patent number: 10495462Abstract: An optical gyroscope includes, in part, an optical switch, a pair of optical rings and a pair of photodetectors. The optical switch supplies a laser beam. The first optical ring delivers a first portion of the beam in a clockwise direction during the first half of a period, and a first portion of the beam in a counter clockwise direction during the second half of the period. The second optical ring delivers a second portion of the beam in a counter clockwise direction during the first half of the period, and a second portion of the beam in a clockwise direction during the second half of the period. The first photodetector receives the beams delivered by the first and second optical rings during the first half of the period. The second photodetector receives the beams delivered by the first and second optical rings during the second half of the period.Type: GrantFiled: May 30, 2018Date of Patent: December 3, 2019Assignee: CALIFORNIA INSTITUTE OF TECHNOLOGYInventors: Parham Porsandeh Khial, Seyed Ali Hajimiri
-
Publication number: 20190075282Abstract: A lens-less 3-D imaging device includes, in part, a multitude of optical receiving elements positioned along a concave or flat surface defining a focal zone of the imaging device. Each optical receiving element has a field of view that overlaps with a field of view of a number of other optical receiving elements. The optical receiving elements may optionally be grating couplers or photo detectors. The optical receiving elements may be disposed on a circuit board. The circuit board may be flexible and include control circuitry configured to form the image in accordance with the received responses of the optical receiving elements and further in accordance with the optical transfer functions of the of optical receiving elements. The circuit boards may include one or more flex sensors or strain gauges adapted to determine their curvatures.Type: ApplicationFiled: August 13, 2018Publication date: March 7, 2019Inventors: Alexander D. White, Parham Porsandeh Khial, Seyed Ali Hajimiri
-
Publication number: 20190028623Abstract: A lens-less imaging device, includes, in part, a multitude of pixels each having a light detector and an associated optical element adapted to cause the pixel to be responsive to a different direction of light received from a target. Each pixel has a field of view that overlaps with a field of view of at least a subset of the remaining pixels. The optical element may be a transparent dielectric element, a transparent MEMS component, a transparent microlens, or include one or more metallic walls. The optical element may be a continuous mapping layer formed over the pixels. Each pixel may or may not have a Gaussian distribution response. The lens-less imaging device forms an image of a target in accordance with an optical transfer functions of the pixels as well as responses of the pixels to the light received from the target.Type: ApplicationFiled: July 23, 2018Publication date: January 24, 2019Inventors: Seyed Ali Hajimiri, Seyed Mohammadreza Fatemi, Aroutin Khachaturian, Parham Porsandeh Khial, Alexander D. White
-
Publication number: 20180356229Abstract: An optical gyroscope includes, in part, an optical switch, a pair of optical rings and a pair of photodetectors. The optical switch supplies a laser beam. The first optical ring delivers a first portion of the beam in a clockwise direction during the first half of a period, and a first portion of the beam in a counter clockwise direction during the second half of the period. The second optical ring delivers a second portion of the beam in a counter clockwise direction during the first half of the period, and a second portion of the beam in a clockwise direction during the second half of the period. The first photodetector receives the beams delivered by the first and second optical rings during the first half of the period. The second photodetector receives the beams delivered by the first and second optical rings during the second half of the period.Type: ApplicationFiled: May 30, 2018Publication date: December 13, 2018Inventors: Parham Porsandeh Khial, Seyed Ali Hajimiri
-
Publication number: 20170234984Abstract: An image capture device includes, in part, N optical transmit antennas forming a first array, N phase modulators each associated with and adapted to control a phase of a different one of the transmit antennas, M optical receive antennas forming a second array, M phase modulators each associated with and adapted to control a phase of a different one of the receive antennas, and a controller adapted to control phases of the first and second plurality of phase modulators to capture an image of an object. The first and second arrays may be one-dimensional arrays positioned substantially orthogonal to one another. Optionally, the first array is a circular array of transmitters, and the second array is a one-dimensional array of receivers positioned in the same plane as that in which the circular array of the transmitters is disposed.Type: ApplicationFiled: February 13, 2017Publication date: August 17, 2017Inventors: Parham Porsandeh Khial, Aroutin Khachaturian, Seyed Ali Hajimiri