Patents by Inventor Ming Chiang A WU

Ming Chiang A WU 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: 20250102676
    Abstract: The present disclosure is directed to imaging LiDARs with optical antennas fed by optical waveguides. The optical antennas can be activated through an optical switch network that connects the optical antennas to a laser source to a receiver. A microlens array is positioned between a lens of the LiDAR system and the optical antennas, the microlens array being positioned so as to transform an emission angle from a corresponding optical antenna to match a chief ray angle of the lens. Methods of use and fabrication are also provided.
    Type: Application
    Filed: October 4, 2024
    Publication date: March 27, 2025
    Inventors: Tae Joon SEOK, Xiaosheng ZHANG, Kyungmok KWON, Ming Chiang A. WU
  • Publication number: 20250105172
    Abstract: An embodiment includes a method including forming a first interconnect structure over a first substrate, the first interconnect structure including dielectric layers and metallization patterns therein. The method also includes forming a redistribution via and a redistribution pad over the first interconnect structure, the redistribution via and the redistribution pad being electrically coupled to at least one of the metallization patterns of the first interconnect structure, the redistribution via and the redistribution pad having a same material composition. The method also includes forming a warpage control dielectric layer over the redistribution pad. The method also includes forming a bond via and a bond pad over the redistribution pad, the bond pad being in the warpage control dielectric layer, the bond via being electrically coupled to the redistribution pad.
    Type: Application
    Filed: December 18, 2023
    Publication date: March 27, 2025
    Inventors: Kuo-Chiang Ting, Sung-Feng Yeh, Ta Hao Sung, Ming-Zhi Yang, Gao-Long Wu
  • Patent number: 12256488
    Abstract: Provided is a circuit board structure including a substrate, a loop-wrapping ground layer, an insulating structure, a first build-up layer, a top wiring layer, a bottom wiring layer, a first conductive via, and a plurality of second conductive vias. The aforementioned structure defines a signal transmitting structure. An equivalent circuit of the signal transmitting structure at least includes a first equivalent circuit, a second equivalent circuit, a third equivalent circuit and a fourth equivalent circuit, which correspond to different uniform transmitting sections respectively. The first equivalent circuit, the second equivalent circuit, the third equivalent circuit and the fourth equivalent circuit are connected in series with each other according to an ABCD transmission matrix series connection principle.
    Type: Grant
    Filed: February 1, 2023
    Date of Patent: March 18, 2025
    Assignee: Unimicron Technology Corp.
    Inventors: Chih-Chiang Lu, Jun-Rui Huang, Ming-Hao Wu, Tung-Chang Lin
  • Patent number: 12235492
    Abstract: A large-scale silicon-photonics-based optical switching system that occupies an area larger than the maximum area of a standard step-and-repeat lithography reticle is disclosed. The system includes a plurality of identical switch blocks, each of is formed in a different reticle field that no larger than the maximum reticle size. Bus waveguides of laterally adjacent switch blocks are stitched together at lateral interfaces that include a second arrangement of waveguide ports that is common to all lateral interfaces. Bus waveguides of vertically adjacent switch blocks are stitched together at vertical interfaces that include a first arrangement of waveguide ports that is common to all vertical interfaces. In some embodiments, the lateral and vertical interfaces include waveguide ports having waveguide coupling regions that are configured to mitigate optical loss due to stitching error.
    Type: Grant
    Filed: May 16, 2024
    Date of Patent: February 25, 2025
    Assignee: The Regents of the University of California
    Inventors: Tae Joon Seok, Ming Chiang A Wu
  • Publication number: 20250042720
    Abstract: Photonic integrated circuits (PICs) are provided that include silicon photonic structures such as a network of horizontal and vertical bus waveguides and micro-electro-mechanical-system (MEMS) actuated switching elements configured to selectively couple light between selected horizontal and vertical bus waveguides. The PICs of the present disclosure can be applied or used in a wide variety of fields including but not limited to fiber-optic communication, photonic computing, and light detection and ranging (LiDAR). The MEMS actuated switching elements can comprise piezoelectric actuators.
    Type: Application
    Filed: July 31, 2024
    Publication date: February 6, 2025
    Inventors: Tae Joon SEOK, Xiaosheng ZHANG, Ming Chiang A. WU, Noriaki KANEDA, Kyungmok KWON
  • Publication number: 20250035853
    Abstract: Photonic integrated circuits (PICs) are provided that include silicon photonic structures such as a network of horizontal and vertical bus waveguides and micro-electro-mechanical-system (MEMS) actuated switching elements configured to selectively couple light between selected horizontal and vertical bus waveguides. The PICs of the present disclosure can be applied or used in a wide variety of fields including but not limited to fiber-optic communication, photonic computing, and light detection and ranging (LiDAR). The PICs can include one or more planar lightwave circuit (PLC) die configured to evanescently couple one or more optical fibers to the plurality of silicon photonics structures.
    Type: Application
    Filed: July 26, 2024
    Publication date: January 30, 2025
    Inventors: Tae Joon SEOK, Xiaosheng ZHANG, Ming Chiang A. WU, Noriaki KANEDA, Kyungmok KWON
  • Publication number: 20240409393
    Abstract: MEMS optical circuit switches (OCS) are provided herein, which include novel structures and methods for (1) Alignment of the optical components (collimator array, micro-electromechanical systems (MEMS) mirror array, etc.) in a three-dimensional (3D) MEMS optical circuit switch OCS at the time of assembly or calibration; (2) Detection of the mechanical rotation angle of each MEMS mirror in a 3D MEMS OCS using strain sensors; (3) Monitoring and compensation of the long-term MEMS mirror rotation angle drift and system alignment drift of a 3D MEMS OCS; and (4) Fabrication and assembly of a 2-directional MEMS mirror with piezoelectric actuators.
    Type: Application
    Filed: June 12, 2024
    Publication date: December 12, 2024
    Inventors: Xiaosheng ZHANG, Ming Chiang A. WU, Tae Joon SEOK, Kyungmok KWON, Noriaki KANEDA
  • Patent number: 12140676
    Abstract: The present disclosure is directed to imaging LiDARs with optical antennas fed by optical waveguides. The optical antennas can be activated through an optical switch network that connects the optical antennas to a laser source to a receiver. A microlens array is positioned between a lens of the LiDAR system and the optical antennas, the microlens array being positioned so as to transform an emission angle from a corresponding optical antenna to match a chief ray angle of the lens. Methods of use and fabrication are also provided.
    Type: Grant
    Filed: May 19, 2022
    Date of Patent: November 12, 2024
    Assignee: nEye Systems, Inc.
    Inventors: Tae Joon Seok, Xiaosheng Zhang, Kyungmok Kwon, Ming Chiang A. Wu
  • Publication number: 20240302598
    Abstract: A large-scale silicon-photonics-based optical switching system that occupies an area larger than the maximum area of a standard step-and-repeat lithography reticle is disclosed. The system includes a plurality of identical switch blocks, each of is formed in a different reticle field that no larger than the maximum reticle size. Bus waveguides of laterally adjacent switch blocks are stitched together at lateral interfaces that include a second arrangement of waveguide ports that is common to all lateral interfaces. Bus waveguides of vertically adjacent switch blocks are stitched together at vertical interfaces that include a first arrangement of waveguide ports that is common to all vertical interfaces. In some embodiments, the lateral and vertical interfaces include waveguide ports having waveguide coupling regions that are configured to mitigate optical loss due to stitching error.
    Type: Application
    Filed: May 16, 2024
    Publication date: September 12, 2024
    Inventors: Tae Joon SEOK, Ming Chiang A WU
  • Publication number: 20240175989
    Abstract: The present disclosure is directed to imaging LiDARs with separate transmit (Tx) and receive (Rx) optical antennas fed by different optical waveguides. This pair of optical antennas can be activated at the same time through a dual-channel optical switch network, with the Tx antenna connected to a laser source and the Rx antenna connected to a receiver. The Tx and Rx antennas can be positioned adjacent to each other, so they point to approximately the same far-field angle. No optical alignment between the Tx and Rx is necessary. This LiDAR configuration, referred to herein as pseudo-monostatic LiDAR, eliminates spurious reflections and increases the dynamic range of the LiDAR.
    Type: Application
    Filed: August 9, 2023
    Publication date: May 30, 2024
    Inventors: Tae Joon SEOK, Ming Chiang A. WU
  • Patent number: 11994720
    Abstract: A large-scale single-photonics-based optical switching system that occupies an area larger than the maximum area of a standard step-and-repeat lithography reticle is disclosed. The system includes a plurality of identical switch blocks, each of is formed in a different reticle field that no larger than the maximum reticle size. Bus waveguides of laterally adjacent switch blocks are stitched together at lateral interfaces that include a second arrangement of waveguide ports that is common to all lateral interfaces. Bus waveguides of vertically adjacent switch blocks are stitched together at vertical interfaces that include a first arrangement of waveguide ports that is common to all vertical interfaces. In some embodiments, the lateral and vertical interfaces include waveguide ports having waveguide coupling regions that are configured to mitigate optical loss due to stitching error.
    Type: Grant
    Filed: June 6, 2023
    Date of Patent: May 28, 2024
    Assignee: The Regents of the University of California
    Inventors: Tae Joon Seok, Ming Chiang A Wu
  • Publication number: 20240011353
    Abstract: An integrated-optics MEMS-actuated beam-steering system is disclosed, wherein the beam-steering system includes a lens and a programmable vertical coupler array having a switching network and an array of vertical couplers, where the switching network can energize of the vertical couplers such that it efficiently emits the light into free-space. The lens collimates the light received from the energized vertical coupler and directs the output beam along a propagation direction determined by the position of the energized vertical coupler within the vertical-coupler array. In some embodiments, the vertical coupler is configured to correct an aberration of the lens. In some embodiments, more than one vertical coupler can be energized to enable steering of multiple output beams. In some embodiments, the switching network is non-blocking.
    Type: Application
    Filed: September 20, 2023
    Publication date: January 11, 2024
    Inventors: Xiaosheng ZHANG, Ming Chiang A. WU, Andrew S. MICHAELS, Johannes HENRIKSSON
  • Publication number: 20230393243
    Abstract: The present disclosure is directed to imaging LiDARs monolithic integration of focal plane switch array LiDARS with CMOS electronics. The CMOS wafer contains electronic circuits needed to control the focal plane array, e.g., digital addressing circuits and MEMS drivers, as well as circuits to amplify and process the detected signals, e.g., trans-impedance amplifiers (TIA), multi-stage amplifiers, analog-to-digital converters (ADC), digital signal processing (DSP), and circuits to communicate with external systems. Methods of use are also provided.
    Type: Application
    Filed: June 2, 2023
    Publication date: December 7, 2023
    Inventors: Ming Chiang A. WU, Tae Joon SEOK, Kyungmok KWON, Noriaki KANEDA, Xiaosheng ZHANG
  • Publication number: 20230324622
    Abstract: A large-scale single-photonics-based optical switching system that occupies an area larger than the maximum area of a standard step-and-repeat lithography reticle is disclosed. The system includes a plurality of identical switch blocks, each of is formed in a different reticle field that no larger than the maximum reticle size. Bus waveguides of laterally adjacent switch blocks are stitched together at lateral interfaces that include a second arrangement of waveguide ports that is common to all lateral interfaces. Bus waveguides of vertically adjacent switch blocks are stitched together at vertical interfaces that include a first arrangement of waveguide ports that is common to all vertical interfaces. In some embodiments, the lateral and vertical interfaces include waveguide ports having waveguide coupling regions that are configured to mitigate optical loss due to stitching error.
    Type: Application
    Filed: June 6, 2023
    Publication date: October 12, 2023
    Inventors: Tae Joon SEOK, Ming Chiang A WU
  • Patent number: 11781379
    Abstract: An integrated-optics MEMS-actuated beam-steering system is disclosed, wherein the beam-steering system includes a lens and a programmable vertical coupler array having a switching network and an array of vertical couplers, where the switching network can energize of the vertical couplers such that it efficiently emits the light into free-space. The lens collimates the light received from the energized vertical coupler and directs the output beam along a propagation direction determined by the position of the energized vertical coupler within the vertical-coupler array. In some embodiments, the vertical coupler is configured to correct an aberration of the lens. In some embodiments, more than one vertical coupler can be energized to enable steering of multiple output beams. In some embodiments, the switching network is non-blocking.
    Type: Grant
    Filed: July 14, 2022
    Date of Patent: October 10, 2023
    Assignee: The Regents of the University of California
    Inventors: Xiaosheng Zhang, Ming Chiang A Wu, Andrew S Michaels, Johannes Henriksson
  • Patent number: 11754683
    Abstract: The present disclosure is directed to imaging LiDARs with separate transmit (Tx) and receive (Rx) optical antennas fed by different optical waveguides. This pair of optical antennas can be activated at the same time through a dual-channel optical switch network, with the Tx antenna connected to a laser source and the Rx antenna connected to a receiver. The Tx and Rx antennas can be positioned adjacent to each other, so they point to approximately the same far-field angle. No optical alignment between the Tx and Rx is necessary. This LiDAR configuration, referred to herein as pseudo-monostatic LiDAR, eliminates spurious reflections and increases the dynamic range of the LiDAR.
    Type: Grant
    Filed: March 4, 2022
    Date of Patent: September 12, 2023
    Assignee: nEYE Systems, Inc.
    Inventors: Tae Joon Seok, Ming Chiang A. Wu
  • Patent number: 11693188
    Abstract: A large-scale single-photonics-based optical switching system that occupies an area larger than the maximum area of a standard step-and-repeat lithography reticle is disclosed. The system includes a plurality of identical switch blocks, each of is formed in a different reticle field that no larger than the maximum reticle size. Bus waveguides of laterally adjacent switch blocks are stitched together at lateral interfaces that include a second arrangement of waveguide ports that is common to all lateral interfaces. Bus waveguides of vertically adjacent switch blocks are stitched together at vertical interfaces that include a first arrangement of waveguide ports that is common to all vertical interfaces. In some embodiments, the lateral and vertical interfaces include waveguide ports having waveguide coupling regions that are configured to mitigate optical loss due to stitching error.
    Type: Grant
    Filed: June 13, 2022
    Date of Patent: July 4, 2023
    Assignee: The Regents of the University of California
    Inventors: Tae Joon Seok, Ming Chiang A Wu
  • Publication number: 20220373688
    Abstract: The present disclosure is directed to imaging LiDARs with optical antennas fed by optical waveguides. The optical antennas can be activated through an optical switch network that connects the optical antennas to a laser source to a receiver. A microlens array is positioned between a lens of the LiDAR system and the optical antennas, the microlens array being positioned so as to transform an emission angle from a corresponding optical antenna to match a chief ray angle of the lens. Methods of use and fabrication are also provided.
    Type: Application
    Filed: May 19, 2022
    Publication date: November 24, 2022
    Inventors: Tae Joon SEOK, Xiaosheng ZHANG, Kyungmok KWON, Ming Chiang A. WU
  • Publication number: 20220357429
    Abstract: The present disclosure is directed to imaging LiDARs with separate transmit (Tx) and receive (Rx) optical antennas fed by different optical waveguides. This pair of optical antennas can be activated at the same time through a dual-channel optical switch network, with the Tx antenna connected to a laser source and the Rx antenna connected to a receiver. The Tx and Rx antennas can be positioned adjacent to each other, so they point to approximately the same far-field angle. No optical alignment between the Tx and Rx is necessary. This LiDAR configuration, referred to herein as pseudo-monostatic LiDAR, eliminates spurious reflections and increases the dynamic range of the LiDAR.
    Type: Application
    Filed: March 4, 2022
    Publication date: November 10, 2022
    Inventors: Tae Joon Seok, Ming Chiang A. Wu
  • Publication number: 20220356761
    Abstract: An integrated-optics MEMS-actuated beam-steering system is disclosed, wherein the beam-steering system includes a lens and a programmable vertical coupler array having a switching network and an array of vertical couplers, where the switching network can energize of the vertical couplers such that it efficiently emits the light into free-space. The lens collimates the light received from the energized vertical coupler and directs the output beam along a propagation direction determined by the position of the energized vertical coupler within the vertical-coupler array. In some embodiments, the vertical coupler is configured to correct an aberration of the lens. In some embodiments, more than one vertical coupler can be energized to enable steering of multiple output beams. In some embodiments, the switching network is non-blocking.
    Type: Application
    Filed: July 14, 2022
    Publication date: November 10, 2022
    Inventors: Xiaosheng ZHANG, Ming Chiang A WU, Andrew S MICHAELS, Johannes HENRIKSSON