热力学一致的过量拉曼光谱推导

IF 2.4 3区 化学 Q2 SPECTROSCOPY
Miriam Willger, Andreas Siegfried Braeuer
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引用次数: 0

摘要

在尝试计算过量拉曼光谱时,作者发现光谱归一化方法不仅会极大地影响过量光谱的强度,还会影响其形状。我们在此介绍一种被认为符合热力学原理的归一化过量拉曼光谱计算方法。在所介绍的方法中,归一化过量拉曼光谱是根据摩尔拉曼光谱计算得出的,而摩尔拉曼光谱是无法直接测量的。因此,本文介绍了如何从强度归一化拉曼光谱和混合物拉曼光谱的回归中获得归一化过量拉曼光谱。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Thermodynamically consistent derivation of excess Raman spectra

Thermodynamically consistent derivation of excess Raman spectra

Attempting to compute the excess Raman spectra, the authors found that the method of spectral normalization greatly influences not only the intensity but also the shape of the excess spectra. We here present a method for the computation of normalized excess Raman spectra that is regarded as thermodynamically consistent. In the presented method, the normalized excess Raman spectra are computed from molar Raman spectra, which cannot be measured directly. It is therefore described how they can be obtained from intensity-normalized Raman spectra and a regression of mixture Raman spectra.

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来源期刊
CiteScore
5.40
自引率
8.00%
发文量
185
审稿时长
3.0 months
期刊介绍: The Journal of Raman Spectroscopy is an international journal dedicated to the publication of original research at the cutting edge of all areas of science and technology related to Raman spectroscopy. The journal seeks to be the central forum for documenting the evolution of the broadly-defined field of Raman spectroscopy that includes an increasing number of rapidly developing techniques and an ever-widening array of interdisciplinary applications. Such topics include time-resolved, coherent and non-linear Raman spectroscopies, nanostructure-based surface-enhanced and tip-enhanced Raman spectroscopies of molecules, resonance Raman to investigate the structure-function relationships and dynamics of biological molecules, linear and nonlinear Raman imaging and microscopy, biomedical applications of Raman, theoretical formalism and advances in quantum computational methodology of all forms of Raman scattering, Raman spectroscopy in archaeology and art, advances in remote Raman sensing and industrial applications, and Raman optical activity of all classes of chiral molecules.
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