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基于稳健相对论多体格林函数的方法来评估芯态电离和激发态。

Robust relativistic many-body Green's function based approaches for assessing core ionized and excited states.

作者信息

Kehry Max, Klopper Wim, Holzer Christof

机构信息

Institute of Physical Chemistry, Karlsruhe Institute of Technology (KIT), Fritz-Haber-Weg 2, 76131 Karlsruhe, Germany.

Institute of Theoretical Solid State Physics, Karlsruhe Institute of Technology (KIT), Wolfgang-Gaede-Straße 1, 76131 Karlsruhe, Germany.

出版信息

J Chem Phys. 2023 Jul 28;159(4). doi: 10.1063/5.0160265.

DOI:10.1063/5.0160265
PMID:37522402
Abstract

A two-component contour deformation (CD) based GW method that employs frequency sampling to drastically reduce the computational effort when assessing quasiparticle states far away from the Fermi level is outlined. Compared to the canonical CD-GW method, computational scaling is reduced by an order of magnitude without sacrificing accuracy. This allows for an efficient calculation of core ionization energies. The improved computational efficiency is used to provide benchmarks for core ionized states, comparing the performance of 15 density functional approximations as Kohn-Sham starting points for GW calculations on a set of 65 core ionization energies of 32 small molecules. Contrary to valence states, GW calculations on core states prefer functionals with only a moderate amount of Hartree-Fock exchange. Moreover, modern ab initio local hybrid functionals are also shown to provide excellent generalized Kohn-Sham references for core GW calculations. Furthermore, the core-valence separated Bethe-Salpeter equation (CVS-BSE) is outlined. CVS-BSE is a convenient tool to probe core excited states. The latter is tested on a set of 40 core excitations of eight small inorganic molecules. Results from the CVS-BSE method for excitation energies and the corresponding absorption cross sections are found to be in excellent agreement with those of reference damped response BSE calculations.

摘要

概述了一种基于双分量轮廓变形(CD)的GW方法,该方法在评估远离费米能级的准粒子态时采用频率采样来大幅减少计算量。与传统的CD-GW方法相比,在不牺牲准确性的情况下,计算量的缩放减少了一个数量级。这使得能够高效地计算核心电离能。利用提高的计算效率为核心电离态提供基准,在一组32个小分子的65个核心电离能上,比较了15种密度泛函近似作为GW计算的Kohn-Sham起点的性能。与价态相反,对核心态的GW计算更喜欢具有适度Hartree-Fock交换量的泛函。此外,还表明现代从头算局部杂化泛函也为核心GW计算提供了出色的广义Kohn-Sham参考。此外,还概述了核心-价态分离的Bethe-Salpeter方程(CVS-BSE)。CVS-BSE是探测核心激发态的便捷工具。后者在一组八个小无机分子的40个核心激发上进行了测试。发现CVS-BSE方法对激发能和相应吸收截面的结果与参考阻尼响应BSE计算的结果非常吻合。

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