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Hyperspectral imager development at Army Research Laboratory

机译:陆军研究实验室的高光谱成像仪开发

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Development of robust compact optical imagers that can acquire both spectral and spatial features from a scene of interest is of utmost importance for standoff detection of chemical and biological agents as well as targets and backgrounds. Spectral features arise due to the material properties of objects as a result of the emission, reflection, and absorption of light. Using hyperspectral imaging one can acquire images with narrow spectral bands and take advantage of the characteristic spectral signatures of different materials making up the scene in detection of objects. Traditional hyperspectral imaging systems use gratings and prisms that acquire one-dimensional spectral images and require relative motion of sensor and scene in addition to data processing to form a two-dimensional image cube. There is much interest in developing hyperspectral imagers using tunable filters that acquire a two-dimensional spectral image and build up an image cube as a function of time. At the Army Research Laboratory (ARL), we are developing hyperspectral imagers using a number of novel tunable filter technologies. These include acousto-optic tunable filters (AOTFs) that can provide adaptive no-moving-parts imagers from the UV to the long wave infrared, diffractive optics technology that can provide image cubes either in a single spectral region or simultaneously in different spectral regions using a single moving lens or by using a lenslet array, and micro-electromechanical systems (MEMS)-based Fabry-Perot (FP) tunable etalons to develop miniature sensors that take advantage of the advances in microfabrication and packaging technologies. New materials are being developed to design AOTFs and a full Stokes polarization imager has been developed, diffractive optics lenslet arrays are being explored, and novel FP tunable filters are under fabrication for the development of novel miniature hyperspectral imagers. Here we will brief on all the technologies being developed and present highlights of our research and development efforts.
机译:能够从感兴趣的场景中获取光谱和空间特征的强大紧凑型光学成像仪的开发对于化学和生物制剂以及目标和背景的距离检测至关重要。光谱特征是由于物体的材料特性而产生的,这是光的发射,反射和吸收的结果。使用高光谱成像,可以获取具有窄光谱带的图像,并在构成物体检测时利用构成场景的不同材料的特征光谱特征。传统的高光谱成像系统使用光栅和棱镜来获取一维光谱图像,并且除了进行数据处理以形成二维图像立方体外,还需要传感器和场景的相对运动。使用可调谐滤波器开发高光谱成像仪引起了人们的极大兴趣,该可调谐滤波器获取二维光谱图像并建立了随时间变化的图像立方体。在陆军研究实验室(ARL),我们正在使用许多新颖的可调滤镜技术来开发高光谱成像仪。其中包括声光可调滤光片(AOTF),可提供从UV到长波红外的自适应无移动成像器;衍射光学技术,可使用单个光谱区域或不同光谱区域同时提供图像立方体。单个移动镜头或通过使用小透镜阵列以及基于微机电系统(MEMS)的Fabry-Perot(FP)可调标准具来开发利用微型制造和封装技术进步的微型传感器。正在开发用于设计AOTF的新材料,并且已经开发了完整的Stokes偏振成像仪,正在研究衍射光学微透镜阵列,并且正在开发新型FP可调滤光片以开发新型的微型高光谱成像仪。在这里,我们将简要介绍正在开发的所有技术,并介绍我们研发工作的重点。

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