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FOURIER TRANSFORM SPECTROSCOPIC IMAGING USING AN INFRARED FOCAL-PLANE ARRAY DETECTOR

机译:使用红外焦平面阵列探测器进行傅立叶变换光谱成像

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A powerful new mid-infrared spectroscopic chemical imaging technique combining step-scan Fourier transform Michelson interferometry with indium antimonide focal-plane array (FPA) image detection is described. The coupling of an infrared focal-plane array detector to an interferometer provides an instrumental multiplex/multichannel advantage. Specifically, the multiple detector elements enable spectra at all pixels to be collected simultaneously, while the interferometer portion of the system allows all the spectral frequencies to be measured concurrently. With this method of mid-infrared spectroscopic imaging, the fidelity of the generated spectral images is limited only by the number of pixels on the FPA detector, and only several seconds of staring time is required for spectral image acquisition. This novel, high-definition technique represents the future of infrared chemical imaging analysis, a new discipline within the chemical and material sciences, which combines the capability of spectroscopy for molecular analysis with the power of visualization. In particular, chemical imaging is broadly applicable for noninvasive, molecular characterization of heterogeneous materials, since all solid-state materials exhibit chemical nonuniformity that exists either by design or by development during the course of material preparation or fabrication. Imaging, employing Raman and infrared spectroscopy, allows the precise characterization of the chemical composition, domain structure, and chemical architecture of a variety of substances. This information is often crucial to a wide range of activities, extending from the fabrication of new materials to a basic understanding of biological samples. In this study, step-scan imaging principles, instrument design details, and infrared chemical imaging results are presented. Since the prospect of performing high-resolution and high-definition mid-infrared chemical imaging very rapidly has been achieved with the step-scan approach, the implications for the chemical analysis of materials are many and varied.
机译:描述了一种功能强大的新型中红外光谱化学成像技术,该技术将步进扫描傅里叶变换迈克尔逊干涉测量技术与铟锑化物焦平面阵列(FPA)图像检测相结合。红外焦平面阵列检测器与干涉仪的耦合提供了仪器多路/多通道优势。具体地,多个检测器元件使得能够同时收集所有像素处的光谱,而系统的干涉仪部分允许同时测量所有光谱频率。使用这种中红外光谱成像方法,生成的光谱图像的保真度仅受FPA检测器上像素的数量限制,并且光谱图像采集仅需要几秒钟的凝视时间。这项新颖的高清技术代表了红外化学成像分析的未来,这是化学和材料科学领域的一门新学科,它将光谱学用于分子分析的能力与可视化能力相结合。特别地,化学成像广泛地适用于异质材料的非侵入性分子表征,因为所有固态材料均表现出化学不均匀性,该化学不均匀性是在材料制备或制造过程中通过设计或通过开发而存在的。利用拉曼光谱和红外光谱进行成像,可以精确表征各种物质的化学组成,域结构和化学结构。从制造新材料到对生物样品的基本了解,这些信息通常对于广泛的活动至关重要。在这项研究中,提出了步进扫描成像原理,仪器设计细节和红外化学成像结果。由于使用步进扫描方法已经非常快地实现了高分辨率和高清晰度的中红外化学成像的前景,因此材料化学分析的含义是多种多样的。

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