Accurate spin-densities based on the domain-based local pair-natural orbital coupled-cluster theory

被引:56
|
作者
Saitow, Masaaki [1 ,2 ]
Neese, Frank [1 ,3 ]
机构
[1] Max Planck Inst Chem Energiekonvers, Stiftstr 34-36, D-45470 Mulheim, Germany
[2] Nagoya Univ, Grad Sch Sci, Dept Chem, Furo Cho, Nagoya, Aichi 4648601, Japan
[3] Max Planck Inst Kohlenforsch, Kaiser Wilhelm Pl 1, D-45470 Mulheim, Germany
来源
JOURNAL OF CHEMICAL PHYSICS | 2018年 / 149卷 / 03期
关键词
ELECTRONIC-G-TENSORS; ANALYTIC ENERGY DERIVATIVES; QUADRATIC CONFIGURATION-INTERACTION; SCALAR RELATIVISTIC CALCULATIONS; RENORMALIZATION-GROUP METHOD; TRANSITION-METAL-COMPLEXES; KROLL-HESS TRANSFORMATION; SHELL HARTREE-FOCK; BASIS-SETS; PARAMAGNETIC-RESONANCE;
D O I
10.1063/1.5027114
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Exploiting locality in the electron correlation reduces the computational cost for solving the Coupled-Cluster (CC) equations. This is important for making CC theory applicable to routine computational chemistry applications where it promises to deliver results of "gold-standard" quality. Recently, we have proposed a series of CC formulations in the domain-based local pair-natural orbital framework [DLPNO-coupled-cluster with singles and doubles (CCSD) and DLPNO-coupled-cluster singles and doubles with perturbative triples] which are designed to reproduce approximately 99.9% of the canonical correlation energy. In our previous work, the DLPNO-CCSD method has been extended to the high-spin open-shell reference and shown to possess comparable accuracy to the closed-shell counterpart [M. Saitow et al., J. Chem. Phys. 146, 164105 (2017)]. The so-called A-equations have been formulated in the DLPNO framework for the closed-shell species as an exact derivative of the DLPNO-CCSD Lagrangian with respect to the PNO-based cluster amplitudes [D. Datta et al., J. Chem. Phys. 145, 114101 (2016)]. In this paper, we extend the DLPNO-based Lagrangian scheme to the high-spin open-shell reference cases, thus enabling the accurate computation of the electron- and spin-densities for large open-shell species. We apply this newly developed approach to various first-order electronic and magnetic properties such as isotropic and anisotropic components in the hyperfine coupling interactions and the electric field gradient. We demonstrate that the DLPNO-CCSD results converge toward the respective canonical CC density and also that the DLPNO-CCSD-based properties are more accurate than the conventional density functional theory (DFT) results in real-life applications. The additional computational cost is not more than one energy evaluation in the DLPNO-CCSD framework. Published by AIP Publishing.
引用
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页数:15
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