Laser Technology, Volume. 47, Issue 3, 310(2023)
Research progress of APD array and its imaging LiDAR system
[1] [1] CHENG B T, DAI Q, XIE X M, et al. Research progress of single photon photodetectors [J]. Laser Technology, 2022, 46(5): 601-609(in Chinese).
[3] [3] ZAPPA F, TISA S, TOSI A, et al. Principles and features of single-photon avalanche diode arrays[J]. Sensors & Actuators, 2007, A140(1):103-112.
[4] [4] STETTNER R, BAILEY H, RICHMOND R D. Eye-safe laser radar 3D imaging[J]. Proceedings of the SPIE, 2004, 5421: 553992.
[5] [5] KAMERMAN G W. Compact 3D flash lidar video cameras and applications[J]. Proceedings of the SPIE, 2010, 7684: 768405.
[6] [6] JACK M, CHAPMAN G, EDWARDS J, et al. Advances in LADAR components and subsystems at raytheon[J]. Proceedings of the SPIE, 2012, 8353: 83532F.
[7] [7] EPP C. Autonomous precision landing and hazard detection and avoidance technology[C]//ALHAT:Aerospace Conference 2007. New York, USA: IEEE, 2007: 32-37.
[8] [8] BECK J D, SCRITCHFIELD R, MITRA P, et al. Linear mode photon counting with the noiseless gain HgCdTe e-avalanche photodiode[J]. Optical Engineering, 2014, 53(8): 81901-81905.
[9] [9] ITZLER M A, CAMPBELL J C, SUN X, et al. HgCdTe e-APD detector arrays with single photon sensitivity for space lidar applications[C]//SPIE Sensing Technology+Applications 2014. New York, USA: IEEE, 2014: 79-85.
[10] [10] BECK J, McCURDY J, SKOKAN M, et al. A highly sensitive multi-element HgCdTe e-APD detector for IPDA lidar applications[C]//SPIE Defense, Security, & Sensing 2013. New York, USA: IEEE, 2013: 45-48.
[11] [11] BECK J, WOODALL M, SCRITCHFIELD R, et al. Gated IR imaging with 128×128 HgCdTe electron avalanche photodiode FPA[J]. Journal of Electronic Materials, 2008, 37(9): 1334-1343.
[12] [12] PARAHYBA V, BORNIOL E D, PERRIER R, et al. Time-of-flight calibration of an MCT-APD sensor for a flash imaging LiDAR system[C]// International Conference on Space Optics-ICSO 2018. New York, USA: IEEE, 2018: 104-112.
[13] [13] SUN X L, ABSHIRE J B, KRAINAK M A, et al. HgCdTe avalanche photodiode array detectors with single photon sensitivity and integrated detector cooler assemblies for space lidar applications[J]. Optical Engineering, 2019,58(6):67101-67103.
[14] [14] PRASAD N S, LIU Y, SUN F, et al. Advanced SWIR photon-sensing integrated circuit hetero-junction phototransistor based focal plane array for space applications[C]//Quantum Sensing and Nano Electronics and Photonics ⅩⅦ 2020. New York, USA: IEEE, 2020: 62-85.
[15] [15] SUN X L, CREMONS D R, MAZARICO E, et al. Small all-range lidar for asteroid and comet core missions[J]. Sensors, 2021,21(9):3081.
[16] [16] HEINRICHS R, AULL B F, MARINO R M, et al. Three-dimensional laser radar with APD arrays[J]. Proceedings of the SPIE, 2001,4377:106-117.
[17] [17] LUDWIG D, KONGABLE A, KRYWICK S, et al. Identifying targets under trees: Jigsaw 3D ladar test results[J]. Proceedings of the SPIE, 2003, 5086:16-26.
[18] [18] MARINO R M, STEPHENS T, HATCH R E, et al. A compact 3D imaging laser radar system using Geiger-mode APD arrays: System and measurements[J]. Proceedings of the SPIE, 2003, 5086: 61-65.
[19] [19] VERGHESE S, MCINTOSH K A, LIAU Z L, et al. Arrays of 128×32 InP-based Geiger-mode avalanche photodiodes[J]. Proceedings of the SPIE, 2009, 7320:821875.
[20] [20] FIGER D F, LEE J, HANOLD B J, et al. A photon-counting detector for exoplanet missions-A[J]. Proceedings of the SPIE, 2011, 8151: 893655.
[21] [21] AULL B F, SCHUETTE D R, YOUNG D J, et al. A study of crosstalk in a MYM256 IMES 256MYM photon counting imager based on silicon Geiger-mode avalanche photodiodes[J]. IEEE Sensors Journal, 2015,15(4):2123-2132.
[22] [22] AULL B F, DUERR E K, FRECHETTE J P, et al. Large-format Geiger-mode avalanche photodiode arrays and readout circuits[J]. IEEE Journal of Selected Topics in Quantum Electronics, 2017,24(2):3800510.
[23] [23] FIGER D F, LEE J, HANOLD B J, et al. A photon-counting detector for exoplanet missions-B[J]. Proceedings of the SPIE, 2011,8151: 893656.
[24] [24] NICLASS C S, SOGA M, MATSUBARA H, et al. A 0.18 μm CMOS SoC for a 100 m range 10 frame/s 200×96-pixel time-of-flight depth sensor[J]. IEEE Journal of Solid-State Circuits, 2014, 49(1): 315-330.
[25] [25] HUTCHINGS S W, JOHNSTON N, GYONGY I, et al. A reconfigurable 3-D-stacked spad imager with in-pixel histogramming for flash lidar or high-speed time-of-flight imaging[J]. IEEE Journal of So-lid-State Circuits, 2019, 54(11):2947-2956.
[26] [26] YUAN P. High performance InGaP Geiger-mode avalanche photodiodes (Conference Presentation)[C]//Laser Radar Technology and Applications ⅩⅩⅤ 2020. New York, USA: IEEE, 2020: 107-122.
[27] [27] ZHAO J X, MILANESE T, GRAMUGLIA F, et al. On analog silicon photomultipliers in standard 55 nm BCD technology for LiDAR applications[J]. IEEE Journal of Selected Topics in Quantum Electronics, 2021, 28(5): 3804010.
[28] [28] WANG Y L. Research on 3-D imaging lidar signal processing system [D]. Chengdu: University of Electronic Science and Technology of China, 2010:75-78(in Chinese).
[29] [29] ZHU J H. Analysis and experimental research on the nonuniformity of array APD non scanning lidar [D]. Harbin: Harbin Institute of Technology, 2013: 17-21(in Chinese).
[30] [30] ZHOU G, XIANG Z, YANG J, et al. Flash LiDAR sensor using fiber coupled APDs[J]. IEEE Sensors Journal, 2015,15(9):1-5.
[31] [31] ZHOU G, LI M, JIANG L, et al. 3D image generation with laser radar based on APD arrays[C]//Geoscience & Remote Sensing Symposium 2015. New York, USA: IEEE, 2015: 32-45.
[32] [32] XU F, WANG Y, LI F. Pixel multiplexing technique for real-time three-dimensional-imaging laser detection and ranging system using four linear-mode avalanche photodiodes[J]. Review of Scientific Instruments, 2016,87(3):141116-141123.
[33] [33] LI X, SHI Z, DAI Q, et al. 64×64 InGaAs/InP 3D imaging laser focal plane detector [J]. Infrared and Laser Engineering, 2018, 47(8): 107-111(in Chinese).
[34] [34] CHENG Y, CAO J, ZHANG F, et al. Design and modeling of pulsed-laser three-dimensional imaging system inspired by compound and human hybrid eye[J]. Scientific Reports, 2018,8(1): 17164.
[35] [35] CHENG Y, CAO J, ZHANG Y, et al. Review of state-of-art artificial compound eye imaging systems[J]. Bioinspiration & Biomime-tics, 2019,14(3): 031002.
[36] [36] CHENG Y, CAO J, CUI H, et al. Bio-inspired lidar imaging with a non-uniform curved linear array receiving system[C]//Conference on Optical Sensing and Imaging Technology 2020. New York, USA: IEEE, 2020: 45-48.
[37] [37] WANG Y, DENG G P, MA H P, et al. For 3D imaging 128×2 li-near mode APD focal plane detector design [J]. Semiconductor Optoelectronics, 2020,41(6): 4-8(in Chinese).
[38] [38] SUN J F, JIANG P, ZHANG X Ch, et al. Experimental research of 32×32 InGaAs Gm-APD arrays laser active imaging[J]. Infrared and Laser Engineering, 2016, 45(12):1206006(in Chinese).
[40] [40] ZHANG X. 0.18 μm standard CMOS process silicon photoelectric multiplier development [D].Wuhan: Huazhong University of Science and Technology, 2019: 37-45(in Chinese).
[41] [41] LIU H M, LONG J Y, DAI L, et al. Large dynamic range epitaxial resistance quenched silicon photoelectric multiplier[J]. Optical Precision Engineering, 2020,28(3): 535-541(in Chinese).
Get Citation
Copy Citation Text
LI Bing, YANG Yunxiu, LI Xiao, GUO Changdong, KOU Xianguo, KONG Fanlin, YUAN Liu, ZHENG Boren. Research progress of APD array and its imaging LiDAR system[J]. Laser Technology, 2023, 47(3): 310
Category:
Received: Jun. 17, 2022
Accepted: --
Published Online: Dec. 5, 2023
The Author Email: YANG Yunxiu (yangyang_@126.com)