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一种仅使用从头算数据参数化的密度泛函理论/多参考组态相互作用哈密顿量。II. 芯激发态。

A DFT/MRCI Hamiltonian parameterized using only ab initio data. II. Core-excited states.

作者信息

Costain Teagan Shane, Rolston Jibrael B, Neville Simon P, Schuurman Michael S

机构信息

Department of Chemistry and Biomolecular Sciences, University of Ottawa, Ottawa, Ontario K1N 6N5, Canada.

National Research Council Canada, 100 Sussex Dr., Ottawa, Ontario K1A 0R6, Canada.

出版信息

J Chem Phys. 2024 Sep 21;161(11). doi: 10.1063/5.0227385.

DOI:10.1063/5.0227385
PMID:39301854
Abstract

A newly parameterized combined density functional theory and multi-reference configuration interaction (DFT/MRCI) Hamiltonian, termed core-valence separation (CVS)-QE12, is defined for the computation of K-shell core-excitation and core-ionization energies. This CVS counterpart to the recently reported QE8 Hamiltonian [Costain et al., J. Chem. Phys, 160, 224106 (2024)] is parameterized by fitting to benchmark quality ab initio data. The definition of the CVS-QE12 and QE8 Hamiltonians differ from previous CVS-DFT/MRCI parameterizations in three primary ways: (i) the replacement of the BHLYP exchange-correlation functional with QTP17 to yield a balanced description of both core and valence excitation energies, (ii) the adoption of a new, three-parameter damping function, and (iii) the introduction of separate scaling of the core-valence and valence-valence Coulombic interactions. Crucially, the parameters of the CVS-QE12 Hamiltonian are obtained via fitting exclusively to highly accurate ab initio vertical core-excitation and ionization energies computed at the CVS-EOM-CCSDT level of theory. The CVS-QE12 Hamiltonian is validated against further benchmark computations and is found to furnish K-edge core vertical excitation and ionization energies exhibiting absolute errors ≤0.5 eV at low computational cost.

摘要

一种新参数化的组合密度泛函理论和多参考组态相互作用(DFT/MRCI)哈密顿量,称为芯价分离(CVS)-QE12,被定义用于计算K壳层芯激发和芯电离能。这种与最近报道的QE8哈密顿量[科斯坦等人,《化学物理杂志》,160,224106(2024)]相对应的CVS哈密顿量,通过拟合基准质量的从头算数据进行参数化。CVS-QE12和QE8哈密顿量的定义在三个主要方面与以前的CVS-DFT/MRCI参数化不同:(i)用QTP17取代BHLYP交换相关泛函,以平衡描述芯激发能和价激发能;(ii)采用一种新的三参数阻尼函数;(iii)引入芯价和价价库仑相互作用的单独缩放。至关重要的是,CVS-QE12哈密顿量的参数是通过专门拟合在CVS-EOM-CCSDT理论水平上计算的高精度从头算垂直芯激发和电离能获得的。CVS-QE12哈密顿量通过进一步的基准计算进行了验证,结果表明它能以低计算成本提供绝对误差≤0.5 eV的K边芯垂直激发和电离能。

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