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Low dark current MCT-based focal plane detector arrays for the LWIR and VLWIR developed at AIM

机译:在AIM开发的用于LWIR和VLWIR的低暗电流基于MCT的焦平面检测器阵列

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For nearly 40 years AIM develops, manufactures and delivers photo-voltaic and photo-conductive infrared sensors and associated cryogenic coolers which are mainly used for military applications like pilotage, weapon sights, UAVs or vehicle platforms. In 2005 AIM started to provide the competences also for space applications like IR detector units for the SLSTR instrument on board of the Sentinel 3 satellite, the hyperspectral SWIR Imager for EnMAP or pushbroom detectors for high resolution Earth observation satellites. Meanwhile AIM delivered more than 25 Flight Models for several customers. The first European pulse-tube cooler ever operating on-board of a satellite is made by AIM. AIM homes the required infrared core capabilities such as design and manufacturing of focal plane assemblies, detector housing technologies, development and manufacturing of cryocoolers and also data processing for thermal IR cameras under one roof which enables high flexibility to react to customer needs and assures economical solutions. Cryogenically cooled Hg_(1-x)Cd_xTe (MCT) quantum detectors are unequalled for applications requiring high imaging as well as high radiometric performance in the infrared spectral range. Compared with other technologies, they provide several advantages, such as the highest quantum efficiency, lower power dissipation compared to photoconductive devices and fast response times, hence outperforming micro-bolometer arrays. However, achieving an excellent MCT detector performance at long (LWIR) and very long (VLWIR) infrared wavelengths is challenging due to the exponential increase in the thermally generated photodiode dark current with increasing cut-off wavelength and / or operating temperature. Dark current is a critical design driver, especially for LWIR / VLWIR multi-spectral imagers with moderate signal levels or hyper-spectral Fourier spectrometers operating deep into the VLWIR spectral region. Consequently, low dark current (LDC) technologies are the prerequisite for future scientific space and earth observation missions. Aiming, for example at exoplanet or earth atmospheric spectral analysis, significant improvement in LWIR / VLWIR detector material performance is mandatory. LDC material optimization can target different directions of impact: (ⅰ) reduction of dark current for a given operational temperature to increase SNR and reduce thermally induced signal offset variations. (ⅱ) operation at elevated temperatures at a given dark current level to reduce mass and power budget of the required cryocooler and to reduce cryostat complexity. (ⅲ) increase the accessible cut-off wavelength at constant detector temperature and dark current level. This paper presents AIM's latest results on n-on-p as well as p-on-n low dark current planar MCT photodiode focal plane detector arrays at cut-off wavelengths >11 μm at 80 K. Dark current densities below Tennant's 'Rule07'~1 have been demonstrated for n-on-p and p-on-n devices. This work has been carried out under ESA contract ESTEC 4000107414/13/NL/SFe~2.
机译:在近40年的时间里,AIM致力于开发,制造和提供光伏和光电红外传感器以及相关的低温冷却器,这些冷却器主要用于军事应用,例如引航员,武器瞄准具,无人机或车辆平台。 2005年,AIM开始为太空应用提供能力,例如Sentinel 3卫星上SLSL仪器的红外探测器,用于EnMAP的高光谱SWIR成像仪或用于高分辨率地球观测卫星的推扫帚探测器。同时,AIM为多个客户提供了超过25种飞行模型。 AIM制造了第一台在卫星上运行的欧洲脉冲管式冷却器。 AIM具备所需的红外核心功能,例如焦平面组件的设计和制造,探测器外壳技术,低温冷却器的开发和制造以及一个屋顶下的红外热像仪的数据处理,从而能够高度灵活地响应客户的需求并确保经济的解决方案。低温冷却的Hg_(1-x)Cd_xTe(MCT)量子探测器在要求高成像以及红外光谱范围内的高辐射性能的应用中无与伦比。与其他技术相比,它们具有几个优势,例如,量子效率最高,与光电导器件相比功耗更低,响应时间短,因此其性能优于微型测辐射热计阵列。然而,由于随着截止波长和/或工作温度的增加,热产生的光电二极管暗电流呈指数增长,因此在长(LWIR)和非常长(VLWIR)的红外波长下实现出色的MCT检测器性能具有挑战性。暗电流是关键的设计驱动因素,特别是对于具有中等信号水平的LWIR / VLWIR多光谱成像仪或在VLWIR光谱区域深处工作的高光谱傅立叶光谱仪而言。因此,低暗电流(LDC)技术是未来科学太空和地球观测任务的前提。例如,针对系外行星或地球大气光谱分析,LWIR / VLWIR探测器材料性能的显着改善是必不可少的。 LDC材料优化可以针对不同的冲击方向:(ⅰ)在给定的工作温度下降低暗电流,以提高SNR并减少热引起的信号偏移量变化。 (ⅱ)在给定的暗电流水平下在高温下运行,以减少所需低温制冷器的质量和功率预算,并降低低温恒温器的复杂性。 (ⅲ)在恒定检测器温度和暗电流水平下增加可达到的截止波长。本文介绍了AIM在n-p以及p-on-n低暗电流平面MCT光电二极管焦平面检测器阵列上的最新结果,其截止波长在80 K时大于11μm。暗电流密度低于Tennant的“ Rule07”在n-on-p和p-on-n器件中已证明〜1。这项工作是根据ESA合同ESTEC 4000107414/13 / NL / SFe〜2进行的。

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