Jacob Christoph R, Reiher Markus
Laboratorium fur Physikalische Chemie, ETH Zurich, Wolfgang-Pauli-Strasse 10, 8093 Zurich, Switzerland.
J Chem Phys. 2009 Feb 28;130(8):084106. doi: 10.1063/1.3077690.
We show how vibrational spectra obtained from quantum chemical calculations can be analyzed by transforming the calculated normal modes contributing to a certain band in the vibrational spectrum to a set of localized modes. This is achieved by determining the unitary transformation that leads to modes which are maximally localized with respect to a suitably defined criterion. We demonstrate that these localized modes are more appropriate for the analysis of calculated vibrational spectra of polypeptides and proteins than the normal modes, which are usually delocalized over the whole system. Both the frequencies at which the bands in the vibrational spectra appear and the total intensities of these bands can be interpreted in terms of the localized modes. Furthermore, we show how coupling constants for the interaction between the localized modes, which can be employed to rationalize the observed band shapes, can be extracted from the calculations.
我们展示了如何通过将振动光谱中对某一谱带起作用的计算正则模式变换为一组定域模式,来分析从量子化学计算获得的振动光谱。这是通过确定酉变换来实现的,该变换会产生相对于适当定义的标准而言最大程度定域的模式。我们证明,与通常在整个系统中离域的正则模式相比,这些定域模式更适合用于分析多肽和蛋白质的计算振动光谱。振动光谱中谱带出现的频率以及这些谱带的总强度都可以根据定域模式来解释。此外,我们展示了如何从计算中提取可用于合理解释观察到的谱带形状的定域模式之间相互作用的耦合常数。