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High-performance hyperspectral imaging using virtual slit optics

机译:使用虚拟裂隙光学元件的高性能高光谱成像

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The High Throughput Virtual Slit (or HTVS) is a new optical technology which can significantly increase the throughput and resolution of a dispersive spectrometer. The HTVS is able to preserve spectrometer etendue, mitigating photon losses normally associated with a slit. Originally implemented in multimode fiber-input spectrometers, HTVS has now been shown to be broadly applicable to a wide variety of spatially scanning hyperspectral imagers and standoff sensors, enhancing their performance and unlocking new application areas. In essence, the anamorphic elements of the HTVS optical system provide a means to decouple the spatial (iFOV) and spectral resolution of nearly any HS1 system. In some scenarios, HTVS can be used to achieve better spectral resolution with the same input slit width. Alternatively, the slit can be widened (to increase the collected signal) while maintaining the same spectral resolution. This newfound flexibility in optimizing critical performance parameters not only improves the performance of HSI systems in existing remote sensing contexts, but also opens up numerous new application areas which were previously inaccessible to hyperspectral techniques. This method adds substantial value to existing HSI designs, particularly in applications involving targets with large spatial extent and requiring high spectral resolution (e.g. standoff Raman spectroscopy). We present recent experimental results from our prototype HTVS pushbroom imager and discuss case studies of standoff Raman detection of hazardous materials, passive detection of faint narrowband and monochromatic sources, and optimal disentangling of target spectral signatures from the solar spectrum under daytime illumination.
机译:高通量虚拟狭缝(或HTVS)是一项新的光学技术,可以显着提高色散仪的通量和分辨率。 HTVS能够保留光谱仪的集光率,从而减轻通常与狭缝相关的光子损失。 HTVS最初是在多模光纤输入光谱仪中实现的,现在已显示其广泛适用于各种空间扫描高光谱成像仪和隔离传感器,从而提高了它们的性能并开辟了新的应用领域。本质上,HTVS光学系统的变形元素提供了一种将几乎任何HS1系统的空间(iFOV)和光谱分辨率解耦的方法。在某些情况下,HTVS可用于在相同的输入狭缝宽度下获得更好的光谱分辨率。或者,可以在保持相同光谱分辨率的同时加宽狭缝(以增加收集的信号)。优化关键性能参数的这种新发现的灵活性不仅提高了HSI系统在现有遥感环境中的性能,而且还开辟了高光谱技术以前无法访问的众多新应用领域。该方法为现有的HSI设计增加了实质性价值,特别是在涉及具有大空间范围的目标并需要高光谱分辨率(例如对峙拉曼光谱)的应用中。我们从HTVS推扫式扫帚成像仪原型中获得最新的实验结果,并讨论了对有害物质进行拉曼检测,被动检测微弱的窄带和单色光源以及在日光照射下从太阳光谱中最佳解开目标光谱特征的案例研究。

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