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连续介质溶剂化模型中溶液中分子的电子激发能:研究态特异性方法和线性响应方法之间的差异。

Electronic excitation energies of molecules in solution within continuum solvation models: investigating the discrepancy between state-specific and linear-response methods.

作者信息

Corni S, Cammi R, Mennucci B, Tomasi J

机构信息

Istituto Nazionale per la Fisica della Materia-Consiglio Nazionale delle Ricerche (INFM-CNR), National Research Center for nanoStructures and bioSystems at Surfaces (S3), Via Campi 213/A, Modena 41100, Italy.

出版信息

J Chem Phys. 2005 Oct 1;123(13):134512. doi: 10.1063/1.2039077.

Abstract

In a recent article [R. Cammi, S. Corni, B. Mennucci, and J. Tomasi, J. Chem. Phys. 122, 104513 (2005)], we demonstrated that the state-specific (SS) and the linear-response (LR) approaches, two different ways to calculate solute excitation energies in the framework of quantum-mechanical continuum models of solvation, give different excitation energy expressions. In particular, they differ in the terms related to the electronic response of the solvent. In the present work, we further investigate this difference by comparing the excitation energy expressions of SS and LR with those obtained through a simple model for solute-solvent systems that bypasses one of the basic assumptions of continuum solvation models, i.e., the use of a single Hartree product of a solute and a solvent wave function to describe the total solute-solvent wave function. In particular, we consider the total solute-solvent wave function as a linear combination of the four products of two solute states and two solvent electronic states. To maximize the comparability with quantum-mechanical continuum model the resulting excitation energy expression is recast in terms of response functions of the solvent and quantities proper for the solvated molecule. The comparison of the presented expressions with the LR and SS ones enlightens the physical meaning of the terms included or neglected by these approaches and shows that SS agrees with the results of the four-level model, while LR includes a term classified as dispersion in previous treatments and neglects another related to electrostatic. A discussion on the possible origin of the LR flaw is finally given.

摘要

在最近的一篇文章[R. 卡米、S. 科尔尼、B. 门努奇和J. 托马西,《化学物理杂志》122, 104513 (2005)]中,我们证明了态特异性(SS)方法和线性响应(LR)方法,这两种在量子力学连续介质溶剂化模型框架内计算溶质激发能的不同方法,给出了不同的激发能表达式。特别是,它们在与溶剂电子响应相关的项上有所不同。在本工作中,我们通过将SS和LR的激发能表达式与通过一个溶质 - 溶剂系统的简单模型得到的表达式进行比较,进一步研究这种差异,该简单模型绕过了连续介质溶剂化模型的一个基本假设,即使用溶质和溶剂波函数的单个哈特里积来描述总溶质 - 溶剂波函数。具体而言,我们将总溶质 - 溶剂波函数视为两个溶质态和两个溶剂电子态的四个积的线性组合。为了使与量子力学连续介质模型的可比性最大化,将得到的激发能表达式根据溶剂的响应函数和适合溶剂化分子的量进行改写。将给出的表达式与LR和SS的表达式进行比较,揭示了这些方法所包含或忽略的项的物理意义,并表明SS与四级模型的结果一致,而LR包含了在先前处理中归类为色散的一项,并忽略了另一项与静电相关的项。最后对LR缺陷的可能起源进行了讨论。

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