Imamura Kosuke, Yokogawa Daisuke, Sato Hirofumi
Department of Molecular Engineering, Graduate School of Engineering, Kyoto University, Kyoto 615-8510, Japan.
Graduate School of Arts and Science, The University of Tokyo, Komaba, Meguro-ku, Tokyo 153-8902, Japan.
J Chem Phys. 2024 Feb 7;160(5). doi: 10.1063/5.0190116.
The significance of solvent effects in electronic structure calculations has long been noted, and various methods have been developed to consider this effect. The reference interaction site model self-consistent field with constrained spatial electron density (RISM-SCF-cSED) is a hybrid model that combines the integral equation theory of molecular liquids with quantum chemistry. This method can consider the statistically convergent solvent distribution at a significantly lower cost than molecular dynamics simulations. Because the RISM theory explicitly considers the solvent structure, it performs well for systems where hydrogen bonds are formed between the solute and solvent molecules, which is a challenge for continuum solvent models. Taking advantage of being founded on the variational principle, theoretical developments have been made in calculating various properties and incorporating electron correlation effects. In this review, we organize the theoretical aspects of RISM-SCF-cSED and its distinctions from other hybrid methods involving integral equation theories. Furthermore, we carefully present its progress in terms of theoretical developments and recent applications.
溶剂效应在电子结构计算中的重要性早已被注意到,并且已经开发了各种方法来考虑这种效应。具有受限空间电子密度的参考相互作用位点模型自洽场(RISM-SCF-cSED)是一种将分子液体的积分方程理论与量子化学相结合的混合模型。该方法能够以比分子动力学模拟低得多的成本考虑统计收敛的溶剂分布。由于RISM理论明确考虑了溶剂结构,因此对于溶质和溶剂分子之间形成氢键的体系表现良好,而这对于连续介质溶剂模型来说是一个挑战。基于变分原理,在计算各种性质和纳入电子相关效应方面已经取得了理论进展。在这篇综述中,我们整理了RISM-SCF-cSED的理论方面及其与其他涉及积分方程理论的混合方法的区别。此外,我们还详细介绍了其在理论发展和近期应用方面的进展。