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A signal processing and data analysis technique for accurate extraction and estimation of FTIR signal aberrations in microsphere-lens-enhanced MWIR photo detectors via system transfer functions mathematical modeling

机译:通过系统传递函数数学建模准确提取和估计微球透镜增强MWIR光探测器中FTIR信号像差的信号处理和数据分析技术

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In this paper we focus on using signal processing techniques and mathematically-derived photo-detector models, with or without microsphere-lens-enhancement, to analyze, characterize and estimate the effect of integrated aberrations on microsphere-lens-enhanced single photo-detector sensitivity. One of the difficulties here relates to the noisy nature of detector FTIR experimental signals in the MWIR band. We show how modeling of the detector spectral response signal, combined with signal boundary-absorption partial replacement, is successfully effective in estimating integrated detector system aberrations. With the detector FTIR spectral data, considered, our findings show that (a) not all four microsphere materials, considered in this work, namely, Sapphire, SLG (Soda, Lime Glass), PS (Polystyrene) and BTG (Barium Titanate Glass) necessarily result in detector sensitivity increase at all MWIR wavelengths. The PS-microsphere-lens-enhanced detector sensitivity turns out to be less than that of the detector without enhancement in the 2700-3200 wavenumber band. This is due to the fact at this band the PS material exhibits additional significant spectral absorptions. (b) there seems to exist some global detector integrated aberrations introduced by factors such as the microsphere lens material and misalignment, silicone-or-rubber adhesive material, photo-detector system and others, that we globally extracted/estimated using the detector experimental FTIR spectral responses and their corresponding generated detector mathematical models. (c) comparison of single detector raw experimental spectral responses (with and without microsphere-lenses of different sizes and material types) to their respective resulting models, shows realistic synthesized detector FTIR data models. With the help of theses resulting detector FTIR response models, we are able to confirm our findings that, relatively independently of the increase in the sensitivity, the microsphere lens significantly decreases the sphere-enhanced-detector Noise to Signal Ratio (NSR), including in spectral bands of high absorption, noise, and aberration. That is, based on the data considered, (1) the resulting microsphere-enhanced photo-detector is generally less sensitive to noise in the MWIR than the mesa and (2) this, seemingly is so, independently of the detector sensitivity increase, for example, due to the microsphere size of a certain material type.
机译:在本文中,我们重点研究使用信号处理技术和数学衍生的光探测器模型(带或不带微球透镜增强)来分析,表征和估计积分像差对微球透镜增强的单光探测器灵敏度的影响。此处的困难之一与MWIR波段中探测器FTIR实验信号的噪声性质有关。我们展示了如何对检测器光谱响应信号进行建模,并结合信号边界吸收部分替换,成功地有效地估计了集成检测器系统的像差。考虑到探测器的FTIR光谱数据,我们的发现表明(a)这项工作并未考虑所有四种微球材料,即蓝宝石,SLG(苏打,石灰玻璃),PS(聚苯乙烯)和BTG(钛酸钡玻璃)必定会导致在所有MWIR波长下检测器灵敏度都增加。事实证明,PS微球透镜增强型检测器的灵敏度小于2700-3200波数波段中未增强的检测器的灵敏度。这是由于以下事实,即PS材料在此频带上显示出额外的显着光谱吸收。 (b)似乎存在一些由微球透镜材料和未对准,硅橡胶或橡胶粘合剂材料,光电探测器系统等因素引起的全局探测器综合像差,我们使用探测器实验性FTIR对其进行了全局提取/估计光谱响应及其相应的生成的检测器数学模型。 (c)将单个探测器的原始实验光谱响应(带有和不带有不同尺寸和材料类型的微球透镜)与其各自的结果模型进行比较,显示出逼真的合成探测器FTIR数据模型。借助这些由此产生的探测器FTIR响应模型,我们能够证实我们的发现:相对于灵敏度的提高,微球透镜显着降低了球增强探测器的信噪比(NSR),包括高吸收,噪声和像差的光谱带。也就是说,基于所考虑的数据,(1)所得的微球增强型光电探测器对MWIR中的噪声通常不如台面那么敏感,并且(2)似乎如此,与探测器灵敏度的提高无关,对于例如,由于某种材料类型的微球尺寸。

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