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局部精确二分量理论中的超精细耦合常数

Hyperfine Coupling Constants in Local Exact Two-Component Theory.

作者信息

Franzke Yannick J, Yu Jason M

机构信息

Fachbereich Chemie, Philipps-Universität Marburg, Hans-Meerwein-Straße 4, 35032 Marburg, Germany.

Department of Chemistry, University of California, Irvine, 1102 Natural Sciences II, Irvine, California 92697-2025, United States.

出版信息

J Chem Theory Comput. 2022 Jan 11;18(1):323-343. doi: 10.1021/acs.jctc.1c01027. Epub 2021 Dec 20.

Abstract

We present a highly efficient implementation of the electron-nucleus hyperfine coupling matrix within the one-electron exact two-component (X2C) theory. The complete derivative of the X2C Hamiltonian is formed, that is, the derivatives of the unitary decoupling transformation are considered. This requires the solution of the response and Sylvester equations, consequently increasing the computational costs. Therefore, we apply the diagonal local approximation to the unitary decoupling transformation (DLU). The finite nucleus model is employed for both the scalar potential and the vector potential. Two-electron picture-change effects are modeled with the (modified) screened nuclear spin-orbit approach. Our implementation is fully integral direct and OpenMP-parallelized. An extensive benchmark study regarding the Hamiltonian, the basis set, and the density functional approximation is carried out for a set of 12-17 transition-metal compounds. The error introduced by DLU is negligible, and the DLU-X2C Hamiltonian accurately reproduces its four-component "fully" relativistic parent results. Functionals with a large amount of Hartree-Fock exchange such as CAM-QTP-02 and ωB97X-D are generally favorable. The pure density functional rSCAN performs remarkably and even outperforms the common hybrid functionals TPSSh and CAM-B3LYP. Fully uncontracted basis sets or contracted quadruple-ζ bases are required for accurate results. The capability of our implementation is demonstrated for [Pt(CCl)] with more than 4700 primitive basis functions and four rare-earth single-molecule magnets: [La(OAr*)], [Lu(NR)], [Lu(OAr*)], and [TbPc]. Here, the results with the spin-orbit DLU-X2C Hamiltonian are in an excellent agreement with the experimental findings of all Pt, La, Lu, and Tb molecules.

摘要

我们展示了单电子精确二分量(X2C)理论中电子-核超精细耦合矩阵的高效实现。形成了X2C哈密顿量的全导数,即考虑了酉解耦变换的导数。这需要求解响应方程和西尔维斯特方程,从而增加了计算成本。因此,我们对酉解耦变换应用对角局部近似(DLU)。对标量势和矢量势都采用有限核模型。用(修正的)屏蔽核自旋轨道方法对双电子图像变化效应进行建模。我们的实现是完全积分直接的且采用OpenMP并行化。针对一组12 - 17种过渡金属化合物,对哈密顿量、基组和密度泛函近似进行了广泛的基准研究。DLU引入的误差可忽略不计,并且DLU - X2C哈密顿量能准确再现其四分量“完全”相对论性母体结果。具有大量哈特里 - 福克交换的泛函,如CAM - QTP - 02和ωB97X - D通常是有利的。纯密度泛函rSCAN表现出色,甚至优于常见的杂化泛函TPSSh和CAM - B3LYP。为了获得准确结果,需要完全未收缩的基组或收缩的四重ζ基组。我们用具有超过4700个原始基函数的[Pt(CCl)]以及四种稀土单分子磁体:[La(OAr*)]、[Lu(NR)]、[Lu(OAr*)]和[TbPc]展示了我们实现的能力。在这里,自旋轨道DLU - X2C哈密顿量的结果与所有Pt、La、Lu和Tb分子的实验结果非常吻合。

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