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A theoretical description of the vibrational spectroscopy of liquids.

机译:液体振动光谱学的理论描述。

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Our work investigates the instantaneous normal mode (INM) and time correlation function (TCF) of several different liquids and compares the results with the experimental infrared (IR) and Raman spectra. This work demonstrates how INM and TCF methods can be used in a complementary fashion to describe liquid state vibrational spectroscopy. INM derived spectra often lead to inter-molecular spectra that are in agreement with corresponding TCF results, suggesting that the inter-molecular dynamics of liquids can be interpreted as oscillations. TCF derived spectra, while formally exact in the low frequency regime (ħω kT), suffer severely from the need for quantum (detailed balance) correction at higher frequencies.; Our approach is to compare TCF spectra with experiment to establish that our MD methods can reliably describe the system of interest. We then employ INM methods to analyze the molecular and dynamical basis for the observed spectroscopy. We have been able to elucidate, on a molecularly detailed basis, a number of condensed phase line shapes, most notably the origin of the broad and intense, high frequency intramolecular O-H stretching absorption in liquid water. This approach has proven successful in systems as diverse as liquid CS2 and H2O at a number of state points.
机译:我们的工作研究了几种不同液体的瞬时正常模式(INM)和时间相关函数(TCF),并将结果与​​实验性红外(IR)和拉曼光谱进行了比较。这项工作演示了如何以补充方式使用INM和TCF方法来描述液态振动光谱学。 INM衍生的光谱通常会导致分子间光谱与相应的TCF结果一致,这表明液体的分子间动力学可以解释为振荡。 TCF衍生的频谱虽然在低频范围内形式精确(ω italic> kT ),但在更高的频率上需要进行量子(详细的平衡)校正。我们的方法是将TCF光谱与实验进行比较,以确定我们的MD方法可以可靠地描述目标系统。然后,我们采用INM方法来分析观察到的光谱的分子和动力学基础。我们已经能够在分子详细的基础上阐明许多缩合的相线形状,最值得注意的是液态水中广泛而强烈的高频分子内O-H拉伸吸收的起源。在许多状态点上,这种方法在液体CS 2 和H 2 O等各种系统中都被证明是成功的。

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