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一种基于原子轨道的实时含时密度泛函理论,用于计算电子圆二色光谱带。

An atomic orbital based real-time time-dependent density functional theory for computing electronic circular dichroism band spectra.

作者信息

Goings Joshua J, Li Xiaosong

机构信息

Department of Chemistry, University of Washington, Seattle, Washington 98195, USA.

出版信息

J Chem Phys. 2016 Jun 21;144(23):234102. doi: 10.1063/1.4953668.

Abstract

One of the challenges of interpreting electronic circular dichroism (ECD) band spectra is that different states may have different rotatory strength signs, determined by their absolute configuration. If the states are closely spaced and opposite in sign, observed transitions may be washed out by nearby states, unlike absorption spectra where transitions are always positive additive. To accurately compute ECD bands, it is necessary to compute a large number of excited states, which may be prohibitively costly if one uses the linear-response time-dependent density functional theory (TDDFT) framework. Here we implement a real-time, atomic-orbital based TDDFT method for computing the entire ECD spectrum simultaneously. The method is advantageous for large systems with a high density of states. In contrast to previous implementations based on real-space grids, the method is variational, independent of nuclear orientation, and does not rely on pseudopotential approximations, making it suitable for computation of chiroptical properties well into the X-ray regime.

摘要

解释电子圆二色性(ECD)能带光谱的挑战之一在于,不同状态可能具有不同的旋光强度符号,这取决于它们的绝对构型。如果这些状态间距很近且符号相反,那么与吸收光谱中跃迁总是正相加不同,观测到的跃迁可能会被附近的状态掩盖。为了准确计算ECD能带,有必要计算大量的激发态,如果使用线性响应含时密度泛函理论(TDDFT)框架,这可能成本过高。在此,我们实现了一种基于原子轨道的实时TDDFT方法,用于同时计算整个ECD光谱。该方法对于具有高态密度的大体系具有优势。与先前基于实空间网格的实现方式不同,该方法是变分的,与核取向无关,并且不依赖赝势近似,使其适用于直至X射线区域的手性光学性质计算。

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