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Mid infared upconversion spectroscopy using diffuse reflection

机译:使用扩散反射的中红外上转换光谱

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We present a novel approach for mid infrared (mid-IR) spectral analysis using upconversion technology applied in a diffuse reflectance setup. We demonstrate experimentally that mid-IR spectral features in the 2.6-4 μm range using different test samples (e.g. zeolites) can be obtained. The results are in good agreement with published data. We believe that the benefit of low noise upconversion methods combined with spectral analysis will provide an alternative approach to e.g. mid-IR Fourier Transform microscopy. We discuss in detail the experimental aspects of the proposed method. The upconversion unit consists of a PP:LN crystal situated as an intracavity component in a Nd:YVO_4 laser. Mixing incoming spectrally and spatially incoherent light from the test sample with the high power intracavity beam of the Nd:YVO_4 laser results in enhanced conversion efficiency. The upconverted light is spectrally located in the near infrared (NIR) wavelength region easily accessible for low noise Silicon CCD camera technology. Thus the room temperature upconversion unit and the Silicon CCD camera replaces noisy mid infrared detectors used in existing Fourier Transform Infrared Spectroscopy. We demonstrate specifically that upconversion methods can be deployed using a diffuse reflectance setup where the test sample is irradiated by a thermal light source, i.e. a globar. The diffuse reflectance geometry is particularly well suited when a transmission setup cannot be used. This situation may happen for highly scattering or absorbing samples.
机译:我们提出了一种新的方法来进行中红外(mid-IR)光谱分析,使用的是在漫反射设置中应用的上转换技术。我们通过实验证明,使用不同的测试样品(例如沸石)可以获得2.6-4μm范围的中红外光谱特征。结果与公布的数据非常吻合。我们相信,低噪声上变频方法与频谱分析相结合的优势将提供一种替代方法,例如中红外傅里叶变换显微镜。我们详细讨论了该方法的实验方面。上转换单元由位于Nd:YVO_4激光器中的腔内组件的PP:LN晶体组成。将来自测试样品的入射光谱和空间非相干光与Nd:YVO_4激光器的高功率腔内光束混合,可以提高转换效率。上转换后的光在光谱上位于近红外(NIR)波长范围内,这对于低噪声硅CCD摄像头技术而言很容易获得。因此,室温上转换单元和硅CCD摄像机取代了现有傅里叶变换红外光谱中使用的嘈杂的中红外探测器。我们具体证明了可以使用漫反射设置来部署上转换方法,其中通过热光源(即球状光源)照射测试样品。当无法使用透射设置时,漫反射几何形状特别适合。对于高度散射或吸收的样品,可能会发生这种情况。

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