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首页> 外文期刊>Bulletin of the Korean Chemical Society >IR Correlation Spectroscopy using Microgratings to be Compared with Dispersive IR Spectroscopy
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IR Correlation Spectroscopy using Microgratings to be Compared with Dispersive IR Spectroscopy

机译:使用微光栅的红外相关光谱与色散红外光谱进行比较

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摘要

Microgratings that were designed and fabricated to generate IR absorption spectra of SF6 and NH3 on diffraction into a specific detection angle were tested by correlation spectroscopy. The micrograting diffraction provides a reference spectrum for a target molecule, and its cross-correlation with the transmission spectrum of a gas cell is obtained by varying the diffraction angle. As our optical setup can measure the dispersive transmission spectrum and the correlation spectrum under the same conditions, the two kinds of spectra were compared directly in terms of signal-to-noise ratio (SNR). The SNR's of the correlation spectra were a few times lower than those of the dispersed spectra; therefore, the correlation spectroscopy can hardly be placed above the dispersive spectroscopy with respect to the SNR. The merit of the correlation spectroscopy is that a rather small range of modulation wavelength is needed to identify the target. Therefore, the correlation spectroscopy would be more useful for such target molecules whose spectra consist of broad peaks spread throughout a wide wavelength range.
机译:通过相关光谱法测试了设计和制造的微光栅,该微光栅在衍射到特定检测角度时产生SF6和NH3的红外吸收光谱。微光栅衍射为目标分子提供了参考光谱,其与气室透射光谱的互相关是通过改变衍射角获得的。由于我们的光学装置可以在相同条件下测量色散透射光谱和相关光谱,因此直接比较了两种光谱的信噪比(SNR)。相关光谱的SNR比分散光谱的SNR低几倍;因此,就SNR而言,相关光谱几乎不能置于色散光谱之上。相关光谱法的优点是需要很小的调制波长范围来识别目标。因此,相关光谱对于这样的目标分子将更有用,这些目标分子的光谱由分布在整个波长范围内的宽峰组成。

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