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Correcting the Effect of Refraction and Dispersion of Light in FT-IR Spectroscopic Imaging in Transmission through Thick Infrared Windows

机译:校正通过厚红外窗透射的FT-IR光谱成像中光的折射和色散影响

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Transmission mode is one of the most common sampling methods for FT-IR spectroscopic imaging because the spectra obtained generally have a reasonable signal-to-noise ratio. However, dispersion and refraction of infrared light occurs when samples are sandwiched between infrared windows or placed underneath a layer of liquid. Dispersion and refraction cause infrared light to focus with different focal lengths depending on the wavelength (wavenumber) of the light. As a result, images obtained are in focus only at a particular wavenumber while they are defocused at other wavenumber values. In this work, a solution to correct this spread of focus by means of adding a lens on top of the infrared transparent window, such that a pseudo hemisphere is formed, has been investigated. Through this lens (or pseudo hemisphere), refraction of light is removed and the light across the spectral range has the same focal depth. Furthermore, the lens acts as a solid immersion objective and an increase of both magnification and spatial resolution (by 1.4 times) is demonstrated. The spatial resolution was investigated using an USAF resolution target, showing that the Rayleigh criterion can be achieved, as well as a sample with a sharp polymer interface to indicate the spatial resolution that can be expected in real samples. The reported approach was used to obtain chemical images of cross sections of cancer tissue and hair samples sandwiched between infrared windows showing the versatility and applicability of the method. In addition to the improved spatial resolution, the results reported herein also demonstrate that the lens can reduce the effect of scattering near the edges of tissue samples. The advantages of the presented approach, obtaining FT-IR spectroscopic images in transmission mode with the same focus across all wavenumber values and simultaneous improvement in spatial resolution, will have wide implications ranging from studies of live cells to sorption of drugs into tissues.
机译:传输模式是FT-IR光谱成像最常见的采样方法之一,因为获得的光谱通常具有合理的信噪比。但是,当样品夹在红外窗口之间或放在液体层下面时,就会发生红外光的散射和折射。色散和折射会导致红外光根据光的波长(波数)以不同的焦距聚焦。结果,获得的图像仅在特定波数处聚焦,而在其他波数值处散焦。在这项工作中,已经研究了一种通过在红外透明窗口的顶部添加一个透镜以形成伪半球的方法来校正焦点扩散的解决方案。通过该透镜(或伪半球),可以消除光的折射,并且整个光谱范围内的光具有相同的焦深。此外,该透镜用作固体浸没物镜,并且显示出放大倍率和空间分辨率均提高了1.4倍。使用USAF分辨率目标对空间分辨率进行了研究,结果表明可以实现瑞利标准,并且样品具有清晰的聚合物界面以指示实际样品中可以预期的空间分辨率。报告的方法用于获得夹在红外窗口之间的癌组织和毛发样品的横截面的化学图像,表明该方法的多功能性和适用性。除了改善的空间分辨率外,本文报道的结果还证明,该透镜可以降低组织样本边缘附近的散射影响。所提出方法的优点是,在透射模式下获得的FT-IR光谱图像在所有波数值上具有相同的焦点,同时空间分辨率也得到了提高,将具有广泛的意义,从研究活细胞到药物吸附到组织中。

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