MCT APD focal plane arrays for astronomy at CEA-LETI

被引:3
|
作者
Rothman, J. [1 ]
de Borniol, E. [1 ]
Gravrand, O. [1 ]
Kern, P. [2 ]
Feautrier, P. [2 ]
Lebouquin, J. -B. [2 ]
Boulade, O. [3 ]
机构
[1] CEA LETI Minatec Campus, 17 Rue Martyrs, F-38054 Grenoble 9, France
[2] IPAGCampus, 17 Rue Martyrs, F-38054 Grenoble 9, France
[3] CEA IRFU Minatec Campus, 17 Rue Martyrs, F-38054 Grenoble 9, France
关键词
APD; HgCdTe; astronomy; wavefront sensing; fringe tracking; RESPONSE-TIME MEASUREMENTS; AVALANCHE;
D O I
10.1117/12.2234688
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
HgCdTe avalanche photodiodes offers a new horizon for observing spatial or temporal signals of a low number infrared photons, enabling new IR science, telecommunication and defence applications. A large number of HgCdTe APD based detectors have been developed at CEA LETI to address the increasing number of applications in which a faint photonic information needs to be extracted from the noise of the proximity electronics used to sample the signal. In most astronomical applications, the low photon flux requires long observation times to acquire a photon shot noise limited signal. The use of MCT APDs enables a reduction of the required observation time but the noise of the diode dark current still needs to be very low in most applications. A number of these detectors have been developed for or can be used in astronomical applications and we present the dark current and gain dependent sensitivities obtained with four different HgCdTe APDs focal plane arrays (FPAs) of different formats, capable of addressing astronomical applications such as wavefront sensing, interferometry, spectroscopy and imagery.
引用
收藏
页数:12
相关论文
共 50 条
  • [31] Alcatel-Lucent Bell Labs, Thales and CEA-Leti Join Forces in III-V Lab
    Mumford, Richard
    MICROWAVE JOURNAL, 2011, 54 (05) : 103 - 104
  • [33] 2048x2048 HgCdTe focal plane arrays for astronomy applications
    Vural, K
    Kozlowski, LJ
    Cooper, DE
    Chen, CA
    Bostrup, G
    Cabelli, C
    Arias, JM
    Bajaj, J
    Hodapp, KW
    Hall, DNB
    Kleinhans, WE
    Price, GG
    Pinter, JA
    INFRARED TECHNOLOGY AND APPLICATIONS XXV, 1999, 3698 : 24 - 35
  • [34] Large format SWIR/MWIR HgCdTe infrared focal plane arrays for astronomy
    Vural, K
    Kozlowski, LJ
    Cabelli, C
    Cabelli, SA
    Chen, AC
    Cooper, DE
    Bostrup, G
    Bailey, RB
    Edwall, DE
    Arias, JM
    Stanley, GA
    Price, GG
    Pinter, JA
    Kleinhans, WE
    Hodapp, K
    Hall, D
    INFRARED DETECTORS AND FOCAL PLANE ARRAYS V, 1998, 3379 : 562 - 571
  • [35] Mid- and far-infrared hybrid focal plane arrays for astronomy
    Herter, T
    Hayward, TL
    Houck, JR
    Seib, DA
    Lin, WN
    INFRARED ASTRONOMICAL INSTRUMENTATION, PTS 1-2, 1998, 3354 : 109 - 115
  • [36] STMicroelectronics, CEA-Leti and AIXTRON develop ultra-thin gate-insulation process for advanced CMOS transistors
    不详
    INFORMACIJE MIDEM-JOURNAL OF MICROELECTRONICS ELECTRONIC COMPONENTS AND MATERIALS, 2004, 34 (02): : 128 - 129
  • [37] Spatial modeling of optical crosstalk in InGaAsP Geiger-mode APD focal plane arrays
    Piccione, Brian
    Jiang, Xudong
    Itzler, Mark A.
    OPTICS EXPRESS, 2016, 24 (10): : 10635 - 10648
  • [38] 320 x 256 Silicon Multiplexers for IR Focal Plane Arrays Based on MCT Diodes
    Kozlov, A. I.
    Marchishin, I. V.
    Ovsyuk, V. N.
    OPTOELECTRONICS INSTRUMENTATION AND DATA PROCESSING, 2007, 43 (04) : 351 - 357
  • [39] Study on HgCdTe APD focal plane technology
    Li Xiong-Jun
    Zhang Ying-Xu
    Chen Xiao
    Li Li-Hua
    Zhao Peng
    Yang Zhen-Yu
    Yang Dong
    Jiang Wei-bo
    Yang Peng-wei
    Kong Jin-Cheng
    Zhao Jun
    Ji Rong-Bin
    JOURNAL OF INFRARED AND MILLIMETER WAVES, 2022, 41 (06) : 965 - 971
  • [40] Focal plane Arrays
    Payne, JM
    SINGLE-DISH RADIO ASTRONOMY: TECHNIQUES AND APPLICATIONS, 2002, 278 : 453 - 462