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使用费米-洛丁轨道在实空间中实现佩德韦-曾格自相互作用校正。

Implementation of Perdew-Zunger self-interaction correction in real space using Fermi-Löwdin orbitals.

作者信息

Diaz Carlos M, Suryanarayana Phanish, Xu Qimen, Baruah Tunna, Pask John E, Zope Rajendra R

机构信息

Department of Physics, University of Texas at El Paso, El Paso, Texas 79968, USA.

College of Engineering, Georgia Institute of Technology, Atlanta, Georgia 30332, USA.

出版信息

J Chem Phys. 2021 Feb 28;154(8):084112. doi: 10.1063/5.0031341.

Abstract

Most widely used density functional approximations suffer from self-interaction error, which can be corrected using the Perdew-Zunger (PZ) self-interaction correction (SIC). We implement the recently proposed size-extensive formulation of PZ-SIC using Fermi-Löwdin Orbitals (FLOs) in real space, which is amenable to systematic convergence and large-scale parallelization. We verify the new formulation within the generalized Slater scheme by computing atomization energies and ionization potentials of selected molecules and comparing to those obtained by existing FLOSIC implementations in Gaussian based codes. The results show good agreement between the two formulations, with new real-space results somewhat closer to experiment on average for the systems considered. We also obtain the ionization potentials and atomization energies by scaling down the Slater statistical average of SIC potentials. The results show that scaling down the average SIC potential improves both atomization energies and ionization potentials, bringing them closer to experiment. Finally, we verify the present formulation by calculating the barrier heights of chemical reactions in the BH6 dataset, where significant improvements are obtained relative to Gaussian based FLOSIC results.

摘要

大多数广泛使用的密度泛函近似都存在自相互作用误差,可使用佩德韦 - 宗格(PZ)自相互作用校正(SIC)来校正。我们在实空间中使用费米 - 洛丁轨道(FLO)实现了最近提出的PZ - SIC的尺寸可扩展性公式,该公式便于系统收敛和大规模并行化。我们在广义斯莱特方案中通过计算选定分子的原子化能和电离势,并与基于高斯代码的现有FLOSIC实现所获得的结果进行比较,来验证新公式。结果表明两种公式之间具有良好的一致性,对于所考虑的系统,新的实空间结果平均而言更接近实验值。我们还通过按比例降低SIC势的斯莱特统计平均值来获得电离势和原子化能。结果表明,按比例降低平均SIC势可同时改善原子化能和电离势,使其更接近实验值。最后,我们通过计算BH6数据集中化学反应的势垒高度来验证当前公式,相对于基于高斯的FLOSIC结果,在此处获得了显著改进。

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