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本文引用的文献

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Improved Formulas for the Calculation of the Electrostatic Contribution to the Intermolecular Interaction Energy from Multipolar Expansion of the Electronic Distribution.用于从电子分布的多极展开计算分子间相互作用能的静电贡献的改进公式。
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A CSOV study of the difference between HF and DFT intermolecular interaction energy values: the importance of the charge transfer contribution.
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Density-functional theory-symmetry-adapted intermolecular perturbation theory with density fitting: a new efficient method to study intermolecular interaction energies.密度泛函理论-密度拟合对称适配分子间微扰理论:一种研究分子间相互作用能的高效新方法。
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Development of the Colle-Salvetti correlation-energy formula into a functional of the electron density.将科勒-萨尔维蒂相关能公式发展为电子密度的泛函。
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使用密度拟合的分子间静电能

Intermolecular electrostatic energies using density fitting.

作者信息

Cisneros G Andrés, Piquemal Jean-Philip, Darden Thomas A

机构信息

Laboratory of Structural Biology, National Institute of Environmental Health Sciences, Research Triangle Park, North Carolina 27707, USA.

出版信息

J Chem Phys. 2005 Jul 22;123(4):044109. doi: 10.1063/1.1947192.

DOI:10.1063/1.1947192
PMID:16095348
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2693352/
Abstract

A method is presented to calculate the electron-electron and nuclear-electron intermolecular Coulomb interaction energy between two molecules by separately fitting the unperturbed molecular electron density of each monomer. This method is based on the variational Coulomb fitting method which relies on the expansion of the ab initio molecular electron density in site-centered auxiliary basis sets. By expanding the electron density of each monomer in this way the integral expressions for the intermolecular electrostatic calculations are simplified, lowering the operation count as well as the memory usage. Furthermore, this method allows the calculation of intermolecular Coulomb interactions with any level of theory from which a one-electron density matrix can be obtained. Our implementation is initially tested by calculating molecular properties with the density fitting method using three different auxiliary basis sets and comparing them to results obtained from ab initio calculations. These properties include dipoles for a series of molecules, as well as the molecular electrostatic potential and electric field for water. Subsequently, the intermolecular electrostatic energy is tested by calculating ten stationary points on the water dimer potential-energy surface. Results are presented for electron densities obtained at four different levels of theory using two different basis sets, fitted with three auxiliary basis sets. Additionally, a one-dimensional electrostatic energy surface scan is performed for four different systems (H2O dimer, Mg2+-H2O, Cu+-H2O, and n-methyl-formamide dimer). Our results show a very good agreement with ab initio calculations for all properties as well as interaction energies.

摘要

本文提出了一种通过分别拟合每个单体的未微扰分子电子密度来计算两个分子之间电子-电子和核-电子分子间库仑相互作用能的方法。该方法基于变分库仑拟合方法,该方法依赖于将从头算分子电子密度在位点中心辅助基组中展开。通过以这种方式展开每个单体的电子密度,分子间静电计算的积分表达式得以简化,降低了运算量和内存使用量。此外,该方法允许使用任何能获得单电子密度矩阵的理论水平来计算分子间库仑相互作用。我们的实现最初通过使用三种不同的辅助基组,用密度拟合方法计算分子性质,并将其与从头算计算结果进行比较来进行测试。这些性质包括一系列分子的偶极矩,以及水的分子静电势和电场。随后,通过计算水二聚体势能面上的十个驻点来测试分子间静电能。给出了使用两种不同基组在四个不同理论水平下获得的电子密度的结果,并用三种辅助基组进行拟合。此外,对四个不同的系统(水二聚体、Mg2+-H2O、Cu+-H2O和N-甲基甲酰胺二聚体)进行了一维静电能面扫描。我们的结果表明,对于所有性质以及相互作用能,与从头算计算结果都非常吻合。