Journal of Infrared and Millimeter Waves, Volume. 41, Issue 6, 1009(2022)

Failure modes and analysis for HgCdTe linear photoconductive detectors

Hui QIAO, Ni-Li WANG, Tian-Yi LAN, Shui-Ping ZHAO, Qi-Zhi TIAN, Ye LU, Reng WANG, Qin HUO, Fan SHI, Yi-Dan TANG, Kai-Hui CHU, Jia JIA, Qing ZHOU, Xiao-Yu SUN, Pei-Lu JIANG, Yi LUO, Xin-Yi CHENG, and Xiang-Yang LI*
Author Affiliations
  • Key Laboratory of Infrared Imaging Materials and Detectors,Shanghai Institute of Technical Physics,Chinese Academy of Sciences,Shanghai 200083,China
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    References(25)

    [1] Elliott T. Recollections of MCT work in the UK at Malvern and Southampton[J]. Proceedings of SPIE - Infrared Technology and Applications XXXV, 7298, 72982M(2017).

    [2] Rogalski A. Next decade in infrared detectors. Next decade in infrared detectors[J]. Proceedings of SPIE - Electro-Optical and Infrared Systems: Technology and Applications XIV, 10433, 104330L(2017).

    [3] LU Wei, LI Ning, ZHEN Hong-Lou et al. Quantum well infrared photodetector in infrared photo-electronics[J]. Science China Physics, Mechanics & Astronomy.

    [4] CHEN Jian-Xin, LIN Chun, HE Li. InAs/GaSb type Ⅱ superlattice infrared detection technology[J]. Infrared and laser engineering.

    [5] Xiao Yunlong, He Zhu, Ning Dai, Hu Weida. Progress and challenges in blocked impurity band infrared detectors for space-based astronomy[J]. Science China Physics, Mechanics & Astronomy, 65, 287301(2022).

    [6] QI Cheng-Li, GU Ming-Jian, HU Xiu-Qing et al. FY-3 Satellite infrared high spectral sounding technique and potential application[J]. Advances in Meteorological Science and Technology.

    [7] YE Zhen-Hua, LI Hui-Hao, WANG Jin-Dong et al. Recent hotspots and innovative trends of infrared photon detectors[J]. J. Infrared Millim. Waves.

    [8] YANG Jian-Rong[M]. Material physics and technology of mercury cadmium telluride.

    [9] Chu J H, Sher A[M]. Physics and properties of narrow gap semiconductors, 208(2008).

    [10] Hartley L M, Reine M B, Terzis C L et al. Photoconductive HgCdTe detector assemblies for the GOES imager and sounder instruments[J]. Proc. SPIE, 2812, 518-527(1996).

    [11] Piotrowski J, Rogalski A[M]. High operating temperature infrared photodetectors, 21-23(2007).

    [12] ZHOU Shi-Chun[M]. Introduction to advanced infrared opto-electrical engineering.

    [13] CHEN Bo-Liang, LI Xiang-Yang[M]. Infrared imaging detectors for space applications.

    [14] Ge H N, Xie R Z, Guo J X et al. Artificial micro- and nano-structure enhanced long and very long-wavelength infrared detectors[J]. Acta Physica Sinica, 71, 110703(2022).

    [15] Liu L F, Chen Y Y, Ye Z H et al. A review on plasma-etch-process induced damage of HgCdTe[J]. Infrared Physics & Technology, 90, 175-185(2018).

    [16] Liu M, Wang C, Zhou L Q. Development of small pixel HgCdTe infrared detectors[J]. Chinese Physics B, 28, 17-25(2019).

    [17] Kinch M A, Borrello S R, Breazeale B H et al. Geometrical enhancement of HgCdTe photoconductive detectors[J]. Infrared physics, 17, 37-145(1977).

    [18] HU Xiao-ning, FANG Jia-xiong. Carrier concentration distribution and performanceof overlap photoconductive detector[J]. J. Infrared Millim. Waves.

    [19] Royer M, Fleury J, Lorans D et al. The infrared detector development for the iasi instrument[J]. Proc. SPIE, 3122, 203-213(1996).

    [21] KANG Rong, LI Li-Hua, PENG Man-Ze et al. How to determine the peak detectivity from measuring blackbody detectivity—the calculation of factor G[J]. Infrared technology.

    [22] Reine M B, Broudy R M. A review of HgCdTe infrared detector technology[J]. Proc. SPIE, 124, 80-90(1977).

    [23] CAO Hong-Hong. Current status and applications of filter technology for infrared detectors[J]. Infrared.

    [24] Reine M B, Krueger E E, O'Dette P et al. Advances in 15μm HgCdTe photovoltaic and photoconductive detector technology for remote sensing[J]. Proc. SPIE, 2816, 120-137(1996).

    [25] LI Da-Yu, DAI Zuo-Xiao, WEI Huan-Dong. Design of a low noise preamplifier with constant current bias for HgCdTe photoconductive detector[J]. Infrared..

    [26] Blatter G, Greuter F. Carrier transport through grain boundaries in semiconductors[J]. Phys. Rev. B, 33, 3952-3966(1986).

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    Hui QIAO, Ni-Li WANG, Tian-Yi LAN, Shui-Ping ZHAO, Qi-Zhi TIAN, Ye LU, Reng WANG, Qin HUO, Fan SHI, Yi-Dan TANG, Kai-Hui CHU, Jia JIA, Qing ZHOU, Xiao-Yu SUN, Pei-Lu JIANG, Yi LUO, Xin-Yi CHENG, Xiang-Yang LI. Failure modes and analysis for HgCdTe linear photoconductive detectors[J]. Journal of Infrared and Millimeter Waves, 2022, 41(6): 1009

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    Paper Information

    Category: Research Articles

    Received: May. 30, 2022

    Accepted: --

    Published Online: Feb. 6, 2023

    The Author Email: Xiang-Yang LI (lixy@mail.sitp.ac.cn)

    DOI:10.11972/j.issn.1001-9014.2022.06.010

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