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混合参考态自旋翻转含时密度泛函理论在精确的 X 射线吸收光谱中的应用。

Mixed-Reference Spin-Flip Time-Dependent Density Functional Theory for Accurate X-ray Absorption Spectroscopy.

机构信息

Department of Chemistry, Kyungpook National University, Daegu 41566, South Korea.

Aix-Marseille Univ, CNRS, Institut de Chimie Radicalaire, Marseille 13284, France.

出版信息

J Chem Theory Comput. 2022 Oct 11;18(10):6240-6250. doi: 10.1021/acs.jctc.2c00746. Epub 2022 Sep 27.

Abstract

It is demonstrated that the challenging core-hole particle (CHP) orbital relaxation for core electron spectra can be readily achieved by the mixed-reference spin-flip (MRSF)-time-dependent density functional theory (TDDFT). With the additional scalar relativistic effects on K-edge excitation energies of 24 second- and 17 third-row molecules, the particular ΔCHP-MRSF(R) exhibited near perfect predictions with RMSE ∼0.5 eV, featuring a median value of 0.3 and an interquartile range of 0.4. Overall, the CHP effect is 2-4 times stronger than relativistic ones, contributing more than 20 eV in the cases of sulfur and chlorine third-row atoms. Such high precision allows to explain the splitting and spectral shapes of O, N, and C atom K-edges in the ground state of thymine with atom as well as orbital specific accuracy. The same protocol with a double hole particle relaxation also produced remarkably accurate K-edge spectra of core to valence hole excitation energies from the first (π*) and second (ππ*) excited states of thymine, confirming the assignment of 1s → excitation for the experimentally observed 526.4 eV peak. Regarding both accuracy and practicality, therefore, MRSF-TDDFT provides a promising protocol for core electron spectra of both ground and excited electronic states alike.

摘要

研究表明,通过混合参考自旋翻转(MRSF)-含时密度泛函理论(TDDFT)可以轻松实现对核心电子谱中挑战性的核心空穴粒子(CHP)轨道弛豫。对于 24 个第二周期和 17 个第三周期分子的 K 边激发能,额外考虑标量相对论效应后,特殊的 ΔCHP-MRSF(R)表现出近乎完美的预测,RMSE 约为 0.5 eV,中位数为 0.3,四分位距为 0.4。总体而言,CHP 效应比相对论效应强 2-4 倍,在硫和氯第三周期原子的情况下,贡献超过 20 eV。这种高精度使得能够以原子和轨道特异性的精度解释胸腺嘧啶基态中 O、N 和 C 原子 K 边的分裂和光谱形状。对于同一协议,采用双空穴粒子弛豫也可以产生胸腺嘧啶的第一(π*)和第二(ππ*)激发态的核心到价带空穴激发能的非常精确的 K 边光谱,证实了实验观察到的 526.4 eV 峰的 1s→ 激发的归属。因此,就准确性和实用性而言,MRSF-TDDFT 为基态和激发态电子态的核心电子光谱提供了一种很有前途的协议。

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