Blasius Jan, Drysch Katrin, Pilz Frank Hendrik, Frömbgen Tom, Kielb Patrycja, Kirchner Barbara
Mulliken Center for Theoretical Chemistry, Clausius Institute of Physical and Theoretical Chemistry, University of Bonn, Beringstraße 4-6, D-53115 Bonn, Germany.
Clausius Institute of Physical and Theoretical Chemistry, University of Bonn, Wegelerstraße 12, D-53115 Bonn, Germany.
J Phys Chem Lett. 2023 Nov 30;14(47):10531-10536. doi: 10.1021/acs.jpclett.3c02761. Epub 2023 Nov 16.
While so far it has been possible to calculate vibrational spectra of mixtures at a particular composition, we present here a novel cluster approach for a fast and robust calculation of mole fraction dependent infrared and vibrational circular dichroism spectra at the example of acetonitrile/()-butan-2-ol mixtures. By assigning weights to a limited number of quantum chemically calculated clusters, vibrational spectra can be obtained at any desired composition by a weighted average of the single cluster spectra. In this way, peak positions carrying information about intermolecular interactions can be predicted. We show that mole fraction dependent peak shifts can be accurately modeled and, that experimentally recorded infrared spectra can be reproduced with high accuracy over the entire mixing range. Because only a very limited number of clusters is required, the presented approach is a valuable and computationally efficient tool to access mole fraction dependent spectra of mixtures on a routine basis.
虽然到目前为止已经能够计算特定组成混合物的振动光谱,但我们在此提出一种新颖的簇方法,以乙腈/()-丁-2-醇混合物为例,快速且稳健地计算依赖于摩尔分数的红外和振动圆二色光谱。通过为有限数量的量子化学计算簇赋予权重,可以通过单个簇光谱的加权平均在任何所需组成下获得振动光谱。通过这种方式,可以预测携带分子间相互作用信息的峰位置。我们表明,可以准确模拟依赖于摩尔分数的峰位移,并且可以在整个混合范围内高精度地重现实验记录的红外光谱。由于只需要非常有限数量的簇,因此所提出的方法是一种有价值且计算效率高的工具,可用于常规获取依赖于摩尔分数的混合物光谱。