Development of a Long Wave Infrared Detector for SGLI instrument

被引:2
|
作者
Dariel, Aurelien [1 ]
Chorier, P. [1 ]
Reeb, N. [1 ]
Terner, B. [1 ]
Vuillermet, M. [1 ]
Tribolet, P. [1 ]
机构
[1] SOFRADIR, F-92290 Chatenay Malabry, France
来源
SENSORS, SYSTEMS, AND NEXT-GENERATION SATELLITES XI | 2007年 / 6744卷
关键词
infrared detector; LWIR; LWIRD; SGLI; MCT; Sofradir;
D O I
10.1117/12.741261
中图分类号
TP7 [遥感技术];
学科分类号
081102 ; 0816 ; 081602 ; 083002 ; 1404 ;
摘要
The Japanese Aerospace Exploration Agency (JAXA) will be conducting the Global Change Observation Mission (GCOM) for monitoring of global environmental change. SGLI (Second Generation Global Imager) is an optical sensor on board GCOM-C (Climate), that includes a Long Wave IR Detector (LWIRD) sensitive up to about 13 lam. SGLI will provide high accuracy measurements of the atmosphere (aerosol, cloud...), the cryosphere (glaciers, snow, sea ice...), the biomass and the Earth temperature (sea and land). Sofradir is a major supplier of Space industry based on the use of a Space qualified MCT technology for detectors from 0.8 to 15 mu m. This mature and reproducible technology has been used for 15 years to produce thousands of LWIR detectors with cut-off wavelengths between 9 and 12 mu m. NEC Toshiba Space, prime contractor for the Second Generation Global Imager (SGLI), has selected SOFRADIR for its heritage in space projects and Mercury Cadmium Telluride (MCT) detectors to develop the LWIR detector. This detector includes two detection circuits for detection at 10.8 mu m and 12.0 mu m, hybridized on a single CMOS readout circuit. Each detection circuit is made of 20x2 square pixels of 140 mu m. In order to optimize the overall performance, each pixel is made of 5x5 square sub-pixels of 28 gm and the readout circuit enables sub-pixel deselection. The MCT material and the photovoltaic technology are adapted to maximize response for the requested bandwidths: cut-off wavelengths of the 2 detection circuits are 12.6 and 13.4 mu m at 55K. This detector is packaged into a sealed housing for full integration into a Dewar at 55K. This paper describes the main technical requirements, the design features of this detector, including trade-offs regarding performance optimization, and presents preliminary electro-optical results.
引用
收藏
页数:12
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