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On the importance of image formation optics in the design of infrared spectroscopic imaging systems

机译:论成像光学在红外光谱成像系统设计中的重要性

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摘要

Infrared spectroscopic imaging provides micron-scale spatial resolution with molecular contrast. While recent work demonstrates that sample morphology affects the recorded spectrum, considerably less attention has been focused on the effects of the optics, including the condenser and objective. This analysis is extremely important, since it will be possible to understand effects on recorded data and provides insight for reducing optical effects through rigorous microscope design. Here, we present a theoretical description and experimental results that demonstrate the effects of commonly-employed cassegranian optics on recorded spectra. We first combine an explicit model of image formation and a method for quantifying and visualizing the deviations in recorded spectra as a function of microscope optics. We then verify these simulations with measurements obtained from spatially heterogeneous samples. The deviation of the computed spectrum from the ideal case is quantified via a map which we call a deviation map. The deviation map is obtained as a function of optical elements by systematic simulations. Examination of deviation maps demonstrates that the optimal optical configuration for minimal deviation is contrary to prevailing practice in which throughput is maximized for an instrument without a sample. This report should be helpful for understanding recorded spectra as a function of the optics, the analytical limits of recorded data determined by the optical design, and potential routes for optimization of imaging systems.
机译:红外光谱成像可提供具有分子对比度的微米级空间分辨率。尽管最近的工作表明样品的形态会影响所记录的光谱,但对光学的影响(包括聚光镜和物镜)的关注却很少。这项分析非常重要,因为有可能了解对记录数据的影响,并通过严格的显微镜设计为减少光学影响提供见解。在这里,我们提供了一个理论描述和实验结果,它们证明了通常使用的卡塞格伦光学对记录光谱的影响。首先,我们将图像形成的显式模型与量化和可视化记录光谱中作为显微镜光学功能的偏差的方法结合起来。然后,我们使用从空间异质样本获得的测量值来验证这些模拟。计算出的光谱与理想情况的偏差通过一个映射图(我们称为偏差图)来量化。通过系统仿真获得作为光学元件的函数的偏差图。偏差图的检查表明,最小偏差的最佳光学配置与现行实践相反,在现行实践中,对于不带样品的仪器,通量最大化。该报告应有助于理解记录的光谱与光学的关系,由光学设计确定的记录数据的分析极限以及优化成像系统的潜在途径。

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