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Modeling of HgCdTe focal plane array spectral inhomogeneities

机译:HgCdTe焦平面阵列光谱不均匀性的建模

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Infrared focal plane arrays (IRFPA) are widely used to perform high quality measurements such as spectrum acquisition at high rate, ballistic missile defense, gas detection, and hyperspectral imaging. For these applications, the fixed pattern noise represents one of the major limiting factors of the array performance. This sensor imperfection refers to the non-uniformity between pixels, and is partially caused by disparities of the cut-off wavenumbers. In this work, we focus particularly on mercury cadmium telluride (HgCdTe), which is the most important material of IR cooled detector applications. Among the many advantages of this ternary alloy is the tunability of the bandgap energy with Cadmium composition, as well as the high quantum efficiency. In order to predict and understand spectral inhomogeneities of HgCdTe-based IRFPA, we propose a modeling approach based on the description of optical phenomena inside the pixels. The model considers the p-n junctions as a unique absorbent bulk layer, and derives the sensitivity of the global structure to both Cadmium composition and HgCdTe layer thickness. For this purpose, HgCdTe optical and material properties were necessary to be known at low temperature (80K), in our operating conditions. We therefore achieved the calculation of the real part of the refractive index using subtractive Kramers-Kronig relations, for several alloy compositions, combined with published experimental points at 80K.
机译:红外焦平面阵列(IRFPA)被广泛用于执行高质量测量,例如高速光谱采集,弹道导弹防御,气体检测和高光谱成像。对于这些应用,固定模式噪声代表了阵列性能的主要限制因素之一。这种传感器缺陷是指像素之间的不均匀性,部分是由截止波数的差异引起的。在这项工作中,我们特别关注碲化汞镉(HgCdTe),这是红外冷却探测器应用中最重要的材料。这种三元合金的许多优点之一是带隙能量与镉组成的可调性以及高量子效率。为了预测和理解基于HgCdTe的IRFPA的光谱不均匀性,我们提出了一种基于像素内部光学现象描述的建模方法。该模型将p-n结视为唯一的吸收体层,并得出整体结构对镉成分和HgCdTe层厚度的敏感性。为此,在我们的工作条件下,必须知道在低温(80K)下HgCdTe的光学和材料特性。因此,对于几种合金成分,我们使用相减的Kramers-Kronig关系式与已公布的80K实验点相结合,实现了折射率的实部计算。

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