Infrared and Laser Engineering, Volume. 52, Issue 3, 20230016(2023)
Research progress of InGaAs single-photon avalanche focal plane (invited)
[8] B F Aull, A H Loomis, D J Young, et al. Geiger-mode avalanche photodiodes for three-dimensional imaging. Lincoln Laboratory Journal, 13, 335-349(2002).
[9] [9] Itzler M A, Entwistle M, Jiang X, et al. Geigermode APD singlephoton cameras f 3D laser radar imaging[C]2014 IEEE Aerospace Conference. IEEE, 2014: 112.
[10] [10] Yuan P, Sudharsanan R, Bai X, et al. 32×32 Geigermode ladar camera[C]Laser Radar Technology Applications XV. SPIE, 2010, 7684: 106117.
[11] [11] Kondratko P. Geigermode Avalanche Photodiode (GmAPD) single photon receiver technology[C]Applications of Lasers f Sensing Free Space Communications, 2021: M2A.2.
[12] [12] Dries J C, Miles B, Stettner R. A 32×32 pixel FLASH laser radar system incpating InGaAs PIN APD detects[C]Laser Radar Technology Applications IX. SPIE, 2004, 5412: 250256.
[13] R M Marino, W R Davis. Jigsaw: a foliage-penetrating 3D imaging laser radar system. Lincoln Laboratory Journal, 15, 23-36(2005).
[14] [14] Dumanis Daniel. Airbne ladar imaging research testbed [D]. United States: MIT Lincoln Labaty, 2011.
[15] [15] Clifton W E, Steele B, Nelson G, et al. Medium altitude airbne Geigermode mapping LIDAR system[C]Laser Radar Technology Applications XX; Atmospheric Propagation XII. SPIE, 2015, 9465: 3946.
[16] [16] Albota Marius, Gurjar Rajan, Mangognia Anthony, et al. The airbne optical systems testbed (AOSTB) [R]. United States: MIT Lincoln Labaty, 2017.
[19] [19] Itzler M A, Entwistle M, Owens M, et al. Design perfmance of single photon APD focal plane arrays f 3D LADAR imaging[C]Detects Imaging Devices: Infrared, Focal Plane, Single Photon. SPIE, 2010, 7780: 387401.
[20] [20] Smith G M, Donnelly J P, Mcintosh K A, et al. Design reliability of mesaetched InPbased Geigermode avalanche photodiodes[C]Conference on Lasers & Electrooptics. IEEE, 2006: CThD7.
[21] [21] Heinrichs R, Aull B F, Marino R M, et al. Threedimensional laser radar with APD arrays[C]Laser Radar Technology Applications VI. SPIE, 2001, 4377: 106117.
[22] [22] Itzler M A, Entwistle M, Owens M, et al. Comparison of 32×128 32×32 Geigermode APD FPAs f single photon 3D LADAR imaging[C]Advanced Photon Counting Techniques V. SPIE, 2011, 8033: 97108.
[23] [23] Younger R D, Donnelly J P, Goodhue W D, et al. Crosstalk acterization mitigation in Geigermode avalanche photodiode arrays[C]2016 IEEE Photonics Conference (IPC). IEEE, 2016: 260261.
[25] [25] Younger R D, McIntosh K A, Chludzinski J W, et al. Crosstalk analysis of integrated Geigermode avalanche photodiode focal plane arrays[C]Society of Photooptical Instrumentation Engineers, 2009, 7320: 73200Q.
[26] [26] Diagne M, McIntosh A, Donnelly J, et al. Advances in InPInGaAs Geigermode APD focal plane arrays (Conference Presentation)[C]Advanced Photon Counting Techniques XII. SPIE, 2018, 10659: 1065904.
[27] [27] Yuan P, Siddiqi N, Zubrod A R, et al. High perfmance InGaP Geigermode avalanche photodiodes[C]Laser Radar Technology Applications XXV. SPIE, 2020, 11410: 6267.
[31] [31] Pestana N, Clark H, MacDonald J, et al. Evaluation of asynchronous geigermode avalanche photodiode arrays f deepspace optical communications[C]Advanced Photon Counting Techniques XV. SPIE, 2021, 11721: 5664.
[33] [33] Aull B F, Loomis A H, Young D J, et al. Threedimensional imaging with arrays of Geigermode avalanche photodiodes[C]Semiconduct Photodetects. SPIE, 2004, 5353: 105116.
[34] H Kaushal, G Kaddoum. Optical communication in space: Challenges and mitigation techniques. IEEE Communi-cations Surveys & Tutorials, 19, 57-96(2016).
[35] [35] Grein M E, Elgin L E, Robinson B S, et al. Efficient communication at telecom wavelengths using wavelength conversion silicon photoncounting detects[C]FreeSpace Laser Communications VII. SPIE, 2007, 6709: 307311.
[36] [36] Lu W, Krainak M A, Yang G, et al. Low noise, free running, high rate photon counting f space communication ranging[C]Advanced Photon Counting Techniques X. SPIE, 2016, 9858: 104114.
[37] [37] Aull B, Burns J, Chen C, et al. Laser radar imager based on 3D integration of Geigermode avalanche photodiodes with two SOI timing circuit layers[C]2006 IEEE International Solid State Circuits ConferenceDigest of Technical Papers. IEEE, 2006: 11791188.
[38] [38] Itzler M, Salzano G, Entwistle M, et al. Asynchronous Geigermode APD cameras with freerunning InGaAsP pixels (Conference Presentation)[C]Advanced Photon Counting Techniques XI. SPIE, 2017, 10212: 102120K.
[39] [39] Lindner S, Zhang C, Antolovic I M, et al. A 252×144 SPAD pixel flash lidar with 1728 dualclock 48.8 ps TDCs, integrated histogramming 14.9to1 compression in 180 nm CMOS technology[C]2018 IEEE Symposium on VLSI Circuits. IEEE, 2018: 6970.
[40] [40] Henderson R K, Johnston N, Hutchings S W, et al. A 256×256 40 nm90 nm CMOS 3Dstacked 120 dB dynamicrange reconfigurable timeresolved SPAD imager[C]2019 IEEE International SolidState Circuits Conference(ISSCC). IEEE, 2019: 106108.
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Dajian Cui, Tianhong Ao, Shuiqing Xi, Cheng Zhang, Ruoyao Gao, Junxiang Yuan, Yong Lei. Research progress of InGaAs single-photon avalanche focal plane (invited)[J]. Infrared and Laser Engineering, 2023, 52(3): 20230016
Category: Special issue-Advances in single-photon detection technology
Received: Jan. 9, 2023
Accepted: --
Published Online: Apr. 12, 2023
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