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从头算有效单电子势算符:在有效片段势中电荷转移能量的应用。

Ab initio effective one-electron potential operators: Applications for charge-transfer energy in effective fragment potentials.

作者信息

Błasiak Bartosz, Bednarska Joanna D, Chołuj Marta, Góra Robert W, Bartkowiak Wojciech

机构信息

Department of Physical and Quantum Chemistry, Faculty of Chemistry, Wrocław University of Science and Technology, Wrocław, Poland.

出版信息

J Comput Chem. 2021 Mar 5;42(6):398-411. doi: 10.1002/jcc.26462. Epub 2020 Dec 21.

Abstract

The concept of effective one-electron potentials (EOPs) has proven to be extremely useful in efficient description of electronic structure of chemical systems, especially extended molecular aggregates such as interacting molecules in condensed phases. Here, a general method for EOP-based elimination of electron repulsion integrals is presented, that is tuned toward the fragment-based calculation methodologies such as the second generation of the effective fragment potentials (EFP2) method. Two general types of the EOP operator matrix elements are distinguished and treated either via the distributed multipole expansion or the extended density fitting (DF) schemes developed in this work. The EOP technique is then applied to reduce the high computational costs of the effective fragment charge-transfer (CT) terms being the bottleneck of EFP2 potentials. The alternative EOP-based CT energy model is proposed, derived within the framework of intermolecular perturbation theory with Hartree-Fock noninteracting reference wavefunctions, compatible with the original EFP2 formulation. It is found that the computational cost of the EFP2 total interaction energy calculation can be reduced by up to 38 times when using the EOP-based formulation of CT energy, as compared to the original EFP2 scheme, without compromising the accuracy for a wide range of weakly interacting neutral and ionic molecular fragments. The proposed model can thus be used routinely within the EFP2 framework.

摘要

有效单电子势(EOP)的概念已被证明在高效描述化学体系的电子结构方面极为有用,特别是对于扩展的分子聚集体,如凝聚相中相互作用的分子。本文提出了一种基于EOP消除电子排斥积分的通用方法,该方法针对基于片段的计算方法进行了调整,如第二代有效片段势(EFP2)方法。区分了EOP算符矩阵元的两种一般类型,并通过本文开发的分布式多极展开或扩展密度拟合(DF)方案进行处理。然后应用EOP技术来降低有效片段电荷转移(CT)项的高计算成本,而CT项是EFP2势的瓶颈。提出了基于EOP的替代CT能量模型,该模型在具有Hartree-Fock非相互作用参考波函数的分子间微扰理论框架内推导得出,与原始EFP2公式兼容。结果发现,与原始EFP2方案相比,使用基于EOP的CT能量公式时,EFP2总相互作用能计算的计算成本可降低多达38倍,且不影响广泛的弱相互作用中性和离子分子片段的精度。因此,所提出的模型可在EFP2框架内常规使用。

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