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物理性质、激子分析与核激发态可视化:一种中间态表示方法

Physical Properties, Exciton Analysis, and Visualization of Core-Excited States: An Intermediate State Representation Approach.

作者信息

Wenzel Jan, Dreuw Andreas

机构信息

Interdisciplinary Center for Scientific Computing, University of Heidelberg , Im Neuenheimer Feld 368, 69120 Heidelberg, Germany.

出版信息

J Chem Theory Comput. 2016 Mar 8;12(3):1314-30. doi: 10.1021/acs.jctc.5b01161. Epub 2016 Feb 17.

Abstract

The theoretical simulation of X-ray absorption spectra is in general a challenging task. However, for small and medium-sized organic molecules, the algebraic diagrammatic construction scheme (ADC) for the polarization operator in combination with the core-valence separation approximation (CVS) has proven to yield core-excitation energies and transition moments with almost quantitative accuracy allowing for reliable construction of X-ray absorption spectra. Still, to understand core-excitation processes in detail, it is not sufficient to only compute energies, but also properties like static dipole moments and state densities are important as they provide deeper insight into the nature of core-excited states. Here, we present for the first time an implementation of the intermediate state representation (ISR) approach in combination with the CVS approximation (CVS-ISR), which gives, in combination with the CVS-ADC method, direct access to core-excited state properties. The performance of the CVS-ADC/CVS-ISR approach is demonstrated by means of small- and medium-sized organic molecules. Besides the calculation of core-excited state dipole moments, advanced analyses of core-excited state densities are performed using descriptors like exciton sizes and distances. Plotting electron and hole densities helps to determine the character of the state, and in particular, the investigation of detachment/attachment densities provides information about orbital relaxation effects that are crucial for understanding core excitations.

摘要

一般来说,X射线吸收光谱的理论模拟是一项具有挑战性的任务。然而,对于中小型有机分子,极化算符的代数图示构建方案(ADC)与芯价分离近似(CVS)相结合已被证明能够产生几乎定量准确的芯激发能和跃迁矩,从而可以可靠地构建X射线吸收光谱。尽管如此,要详细理解芯激发过程,仅计算能量是不够的,诸如静态偶极矩和态密度等性质也很重要,因为它们能更深入地洞察芯激发态的本质。在此,我们首次展示了中间态表示(ISR)方法与CVS近似(CVS - ISR)相结合的实现方式,它与CVS - ADC方法相结合,可直接获取芯激发态性质。通过中小型有机分子展示了CVS - ADC/CVS - ISR方法的性能。除了计算芯激发态偶极矩外,还使用激子尺寸和距离等描述符对芯激发态密度进行了深入分析。绘制电子和空穴密度有助于确定态的特征,特别是对脱离/附着密度的研究提供了有关轨道弛豫效应的信息,这对于理解芯激发至关重要。

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