IP Library › Granted Patent US 12,498,462
Granted Patent B2
US 12,498,462 · App. 17/742,419 · Granted Dec 16, 2025

LiDAR array with vertically-coupled transceivers

Inventors: Nurul Taimur Islam (Cupertino, CA); Malcolm J. Northcott (Santa Cruz, CA); Christopher M. Rogers (Palo Alto, CA); Helen H. Liang (Los Gatos, CA); Ehsan Shah-Hosseini (San Francisco, CA); Jack E. Graves (Sunnyvale, CA); Ariel Lipson (Tel Aviv, IL); Daniel Kravitz (Petah Tikva, IL)
Assignee: Apple Inc.
G01S7/4817G01S7/4815G01S7/4816G01S7/4818G01S7/499G01S17/42G01S17/89G02B26/105G02B26/108
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Quick Facts
Patent No.
US 12,498,462
App. No.
17/742,419
Granted
Dec 16, 2025
Kind
B2
Abstract

An optical sensing device includes a planar substrate and an array of optical transceivers disposed on the planar substrate. Each optical transceiver includes a photodetector, at least one turning mirror having a reflective surface disposed diagonally relative to the substrate, and multiple waveguides disposed parallel to the substrate. The waveguides include a transmit waveguide, which is coupled to convey outgoing light from a coherent light source to the at least one turning mirror for output from the optical transceiver, and a receive waveguide, which is coupled to receive incoming light reflected by the at least one turning mirror and to convey the incoming light to the photodetector.

Claims (53)

1 . An optical sensing device, comprising:

a planar substrate; and

an array of optical transceivers disposed on the planar substrate, each optical transceiver comprising:

a photodetector;

at least one turning mirror having a reflective surface disposed diagonally relative to the substrate;

multiple waveguides disposed parallel to the substrate and comprising:

a transmit waveguide, which is coupled to convey outgoing light from a coherent light source to the at least one turning mirror for output from the optical transceiver; and

a receive waveguide, which is coupled to receive incoming light reflected by the at least one turning mirror and to convey the incoming light to the photodetector;

a splitter coupled to split off a fraction of the outgoing light received by the transmit waveguide; and

a mixer which is coupled to mix the fraction of the outgoing light with the incoming light received through the receive waveguide for input to the photodetector.

2 . The device according to claim 1 , wherein the at least one turning mirror comprises a right-angle prism disposed on the substrate.

3 . The device according to claim 1 , wherein the photodetector comprises a balanced pair of photodiodes, and wherein each optical transceiver comprises a splitter coupled to divide the light received through the receive waveguide between the photodiodes.

4 . The device according to claim 1 , wherein the device comprises a quarter-wave plate, which is configured to rotate a polarization of both the outgoing and the incoming light that is reflected from the at least one turning mirror, and wherein each optical transceiver comprises a polarization rotator, which is coupled to rotate the polarization of the incoming light in the receive waveguide.

5 . An optical sensing device, comprising:

a planar substrate; and

an array of optical transceivers disposed on the planar substrate, each optical transceiver comprising:

a photodetector;

at least one turning mirror having a reflective surface disposed diagonally relative to the substrate; and

multiple waveguides disposed parallel to the substrate and comprising:

a transmit waveguide, which is coupled to convey outgoing light from a coherent light source to the at least one turning mirror for output from the optical transceiver; and

a receive waveguide, which is coupled to receive incoming light reflected by the at least one turning mirror and to convey the incoming light to the photodetector,

wherein the waveguides comprise at least one spot size converter, which is configured to reduce a mode diameter of the outgoing light before incidence of the outgoing light on the at least one turning mirror.

6 . The device according to claim 5 , wherein the at least one spot size converter comprises a tapered waveguide.

7 . The device according to claim 5 , and comprising at least one lens, which is configured to collimate the outgoing light following reflection from the at least one turning mirror and to focus the incoming light before reflection via the at least one turning mirror into the receive waveguide.

8 . An optical sensing device, comprising:

a planar substrate; and

an array of optical transceivers disposed on the planar substrate, each optical transceiver comprising:

a photodetector;

at least one turning mirror having a reflective surface disposed diagonally relative to the substrate; and

multiple waveguides disposed parallel to the substrate and comprising:

a transmit waveguide, which is coupled to convey outgoing light from a coherent light source to the at least one turning mirror for output from the optical transceiver; and

a receive waveguide, which is coupled to receive incoming light reflected by the at least one turning mirror and to convey the incoming light to the photodetector,

wherein the optical transceivers are configured for bistatic operation.

9 . The device according to claim 8 , wherein the at least one turning mirror comprises a transmit mirror coupled to reflect the outgoing light from the transmit waveguide and a receive mirror coupled to reflect the incoming light into the receive waveguide.

10 . The device according to claim 8 , wherein the at least one turning mirror comprises a single mirror coupled both to reflect the outgoing light from the transmit waveguide and to reflect the incoming light into the receive waveguide.

11 . The device according to claim 1 , wherein the optical transceivers are configured for monostatic operation, and the at least one turning mirror comprises a single turning mirror coupled both to reflect the outgoing light from the transmit waveguide and to reflect the incoming light into the receive waveguide.

12 . The device according to claim 11 , wherein the waveguides in each optical transceiver comprise a bidirectional waveguide coupled to the single turning mirror, and wherein each optical transceiver comprises a directional splitter, which is coupled to convey the outgoing light from the transmit waveguide into the bidirectional waveguide for output to the turning mirror and to convey the incoming light received in the bidirectional waveguide from the turning mirror to the receive waveguide.

13 . LiDAR apparatus, comprising:

the device according to claim 1 ;

optics configured to collimate the outgoing light that has been reflected from the at least one turning mirror and to focus the incoming light toward the turning mirror for input to the receive waveguide; and

processing and control circuits configured to process the signals output by the photodetector.

14 . A method for producing an optical sensing device, comprising:

forming an array of optical transceivers on a planar substrate, each optical transceiver comprising:

a photodetector;

at least one turning mirror having a reflective surface disposed diagonally relative to the substrate; and

multiple waveguides disposed parallel to the substrate and comprising:

a transmit waveguide, which is coupled to convey outgoing light from a coherent light source to the at least one turning mirror for output from the optical transceiver; and

a receive waveguide, which is coupled to receive incoming light reflected by the at least one turning mirror and to convey the incoming light to the photodetector,

wherein the waveguides comprise at least one spot size converter, which is configured to reduce a mode diameter of the outgoing light before incidence of the outgoing light on the at least one turning mirror.

15 . The method according to claim 14 , wherein the at least one turning mirror comprises a right-angle prism disposed on the substrate.

16 . The method according to claim 14 , wherein the at least one spot size converter comprises a tapered waveguide.

17 . The method according to claim 14 , wherein forming the array comprises configuring the optical transceivers for monostatic operation.

18 . The method according to claim 14 , wherein forming the array comprises configuring the optical transceivers for monostatic operation, wherein the at least one turning mirror comprises a single turning mirror coupled both to reflect the outgoing light from the transmit waveguide and to reflect the incoming light into the receive waveguide.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 12, 2022
From: ISLAM, NURUL TAIMUR; NORTHCOTT, MALCOLM J.; ROGERS, CHRISTOPHER M.; LIANG, HELEN H.; SHAH-HOSSEINI, EHSAN; GRAVES, JACK E.; LIPSON, ARIEL; KRAVITZ, DANIEL
To: APPLE INC.
Reel/Frame 059954/0173 →
Continuity (1)
Related Publication 20230366986A1 · Nov 16, 2023
References Cited (73)
US 9529079B1 · Droz et al. · 2016 [cited by applicant]
US 9971948B1 · Herrington et al. · 2018 [cited by applicant]
US 10018723B2 · Sromin et al. · 2018 [cited by applicant]
US 20170285325A1 · Erlich et al. · 2017 [cited by applicant]
US 20190025426A1 · Satyan et al. · 2019 [cited by applicant]
US 20200209361A1 · Maier · 2020 [cited by examiner]
US 20200234785A1 · Kyselov et al. · 2020 [cited by applicant]
US 20210257396A1 · Piggott et al. · 2021 [cited by applicant]
US 20210311194A1 · Boloorian · 2021 [cited by applicant]
US 20210314734A1 · Mehta et al. · 2021 [cited by applicant]
US 20210341611A1 · Boloorian · 2021 [cited by applicant]
US 20210373350A1 · Oda · 2021 [cited by examiner]
US 20210382153A1 · Dielacher et al. · 2021 [cited by applicant]
US 20210405164A1 · Klemme et al. · 2021 [cited by applicant]
US 20220043108A1 · Lavian · 2022 [cited by applicant]
US 20220050201A1 · Sun et al. · 2022 [cited by applicant]
US 20220075076A1 · Michaels et al. · 2022 [cited by applicant]
US 20220091242A1 · Gagne et al. · 2022 [cited by applicant]
US 20220113379A1 · Viswanatha et al. · 2022 [cited by applicant]
US 20220404475A1 · Laflaquiere et al. · 2022 [cited by applicant]
US 20240069285A1 · Hajati · 2024 [cited by examiner]
US 20240369689A1 · Hajati · 2024 [cited by examiner]
US 20250116763A1 · Spollard · 2025 [cited by examiner]
CN 109541619A · 2019 [cited by applicant]
CN 115605774A · 2023 [cited by applicant]
CN 115932888A · 2023 [cited by applicant]
DE 102020213161A1 · 2022 [cited by applicant]
EP 3961257A1 · 2022 [cited by applicant]
EP 3971614A1 · 2022 [cited by applicant]
ES 2896302T3 · 2022 [cited by applicant]
WO 2018102190A1 · 2018 [cited by applicant]
WO 2020161260A1 · 2020 [cited by applicant]
WO 2020190338A1 · 2020 [cited by applicant]
WO 2022168500A1 · 2022 [cited by applicant]
WO 2023012527A1 · 2023 [cited by applicant]
Ding et al., “Compensation of Laser Frequency Tuning Nonlinearity of a Long Range OFDR Using Deskew Filter,” Optics Express, vol. 21, No. 3, pp. 3826-3834, Feb. 11, 2013. [cited by applicant]
Du et al., “Method for Improving Spatial Resolution and Amplitude by Optimized Deskew Filter in Long-Range OFDR,” IEEE Photonics Journal, vol. 6, No. 5, pp. 1-13, Oct. 2014. [cited by applicant]
Sandborn, “FMCW Lidar: Scaling to the Chip-Level and Improving Phase-Noise-Limited Performance,” Dissertation, Electrical Engineering and Computer Sciences, University of California at Berkeley, USA, pp. 1-90, Dec. 1, 2… [cited by applicant]
Meta et al., “Signal Processing for FMCW SAR,” IEEE Transactions on Geoscience and Remote Sensing, voume 45, No. 11, pp. 3519-3532, Nov. 2007. [cited by applicant]
Peek, “Estimation and Compensation of Frequency Sweep Nonlinearity in FMCW Radar,” M.Sc. thesis in Applied Mathematics, The University of Twente, The Netherlands, pp. 1-67, Sep. 2011. [cited by applicant]
Meta et al., “Range Non-Linearities Correction in FMCW SAR,” IEEE, pp. 403-406, year 2006. [cited by applicant]
Baumann et al., “Speckle Phase Noise in Coherent Laser Ranging: Fundamental Precision Limitations,” Optics Letters, vol. 39, issue 16, pp. 4776-4779, Aug. 15, 2014. [cited by applicant]
Islam et al., U.S. Appl. No. 17/577,039, filed Jan. 17, 2022. [cited by applicant]
Cohen, U.S. Appl. No. 17/838,217, filed Jun. 12, 2022. [cited by applicant]
Islam et al., U.S. Appl. No. 17/863,419, filed Jul. 13, 2022. [cited by applicant]
Kendrisic et al., “Thermally Tuned VCSEL-Based SS-OCT System,” Biophotonics Congress: Biomedical Optics (Translational, Microscopy, OCT, OTS, Brain), Optica Publishing Group, pp. 1-2, year 2022. [cited by applicant]
Axelrod et al., “Reconfigurabe Quasi-Resonance Scanner for 3D FMCW Imaging,” Optics Letters, vol. 39, issue 16, pp. 4776-4779, year 2014. [cited by applicant]
Northcott et al., U.S. Appl. No. 18/094,999, filed Jan. 10, 2023. [cited by applicant]
Shnaiderman et al., U.S. Appl. No. 18/094,997, filed Jan. 10, 2023. [cited by applicant]
Shnaiderman et al., U.S. Appl. No. 18/314,843, filed May 10, 2023. [cited by applicant]
Oggier et al., U.S. Appl. No. 18/113,104, filed Feb. 23, 2023. [cited by applicant]
Kamali et al., “A review of dielectric optical metasurfaces for wavefront control,” Nanophotonics, Open Access, pp. 1-84, May 18, 2018. [cited by applicant]
Xiong et al., “Controlling the degrees of freedom in metasurface designs for multi-functional optical devices,” Nanoscale Advances, vol. 1, pp. 3786-3806, year 2019. [cited by applicant]
Wikipedia, “Laser speckle contrast imaging,” pp. 1-8, last edited Dec. 12, 2023. [cited by applicant]
Li et al., “Transmissive-detected laser speckle contrast imaging for blood flow monitoring in thick tissue: ,” from Monte Carlo simulation to experimental demonstration, Nature, Light: Science & Applications, vol. 10, a… [cited by applicant]
Heeman et al., “Clinical applications of laser speckle contrast imaging: a review,” Journal of Biomedical Optics, vol. 24, No. 8, pp. 080901-1-80901-11, Aug. 2019. [cited by applicant]
Zalevsky et al., “Simultaneous remote extraction of multiple speech sources and heart beats from secondary speckles pattern,” Optics Express, vol. 17, No. 24, pp. 1-15, Nov. 23, 2009. [cited by applicant]
Wang, “Investigation of New Concepts and Solutions for Silicon Nanophotonics,” Doctoral Thesis in Microelectronics and Applied Physics, Stockholm, Sweden, pp. 1-91, year 2010. [cited by applicant]
Sacher et al., “Wide Bandwidth and High Coupling Efficiency Si3N4-on-SOI Dual-level Grating Coupler,” Optics Express, vol. 22, No. 9, pp. 1-10, May 5, 2014. [cited by applicant]
Rogers et al., “A Universal 3D Imaging Sensor on a Silicon Photonics Platform,” ArXiv:2008.02411v3, pp. 1-18, Nov. 11, 2020. [cited by applicant]
Lumerical Inc., “Tutorial—Splitter Optimization,” pp. 1-8, year 2019, as downloaded from https://lumopt.readthedocs.io/en/latest/tutorial.html. [cited by applicant]
Nicolaescu et al., “3D Imaging via Silicon-photonics-based LIDAR,” Proc. SPIE vol. 11691, Silicon Photonics XVI, pp. 1-12, year 2021. [cited by applicant]
Marchetti et al., “Coupling Strategies for Silicon Photonics Integrated Chips [Invited],” Photonics Reseach, vol. 7, No. 2, pp. 1-39, Feb. 2019. [cited by applicant]
Marchetti et al., “High-efficiency Grating-couplers: Demonstration of a New Design Strategy,” Springer Nature, Scientific Reports, vol. 7, pp. 1-9, Nov. 2017. [cited by applicant]
Hooten et al., “Inverse Design of Grating Couplers Using the Policy Gradient Method from Reinforcement Learning,” De Gruyter, Nanophotonics, vol. 10, issue 15, pp. 3843-3856, year 2021. [cited by applicant]
Michaels, “A Hierarchical Approach to the Design and Optimization of Photonics,” PhD Thesis, University of California, Berkeley, pp. 1-139, year 2019. [cited by applicant]
Molesky, “Outlook for Inverse Design in Nanophotonics,” arXiv:1801.06715v1, pp. 1-13, Jan. 20, 2018. [cited by applicant]
International Application # PCT/US2023/066803 Search Report dated Jul. 27, 2023. [cited by applicant]
Vasilyev, “The Optoelectronic Swept-Frequency Laser and Its Applications in Ranging, Three-Dimensional Imaging, and Coherent Beam Combining of Chirped-Seed Amplifiers,” Doctoral Thesis, California Institute of Technolog… [cited by applicant]
International Application # PCT/US2023/084979 Search Report dated Mar. 12, 2024. [cited by applicant]
Huang, Frequency-modulated continuous-wave 3D imaging with high photon efficiency Huang, Jul. 12, 2022, vol. 47, pp. 3568-3571. [cited by applicant]
Japanese Office Action, Application # 2024-115446, dated Oct. 14, 2025. [cited by applicant]
Non-Final Office Action for Application # U.S. Appl. No. 17/863,419, dated Aug. 12, 2025. [cited by applicant]