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使用定域分子轨道的含时密度泛函理论中激发态的表征

Characterization of excited states in time-dependent density functional theory using localized molecular orbitals.

作者信息

Sen Souloke, Senjean Bruno, Visscher Lucas

机构信息

Division of Theoretical Chemistry, Faculty of Sciences, Vrije Universiteit Amsterdam, De Boelelaan 1083, 1081 HV Amsterdam, The Netherlands.

ICGM, Université de Montpellier, CNRS, ENSCM, Montpellier, France.

出版信息

J Chem Phys. 2023 Feb 7;158(5):054115. doi: 10.1063/5.0137729.

Abstract

Localized molecular orbitals are often used for the analysis of chemical bonds, but they can also serve to efficiently and comprehensibly compute linear response properties. While conventional canonical molecular orbitals provide an adequate basis for the treatment of excited states, a chemically meaningful identification of the different excited-state processes is difficult within such a delocalized orbital basis. In this work, starting from an initial set of supermolecular canonical molecular orbitals, we provide a simple one-step top-down embedding procedure for generating a set of orbitals, which are localized in terms of the supermolecule but delocalized over each subsystem composing the supermolecule. Using an orbital partitioning scheme based on such sets of localized orbitals, we further present a procedure for the construction of local excitations and charge-transfer states within the linear response framework of time-dependent density functional theory (TDDFT). This procedure provides direct access to approximate diabatic excitation energies and, under the Tamm-Dancoff approximation, also their corresponding electronic couplings-quantities that are of primary importance in modeling energy transfer processes in complex biological systems. Our approach is compared with a recently developed diabatization procedure based on subsystem TDDFT using projection operators, which leads to a similar set of working equations. Although both of these methods differ in the general localization strategies adopted and the type of basis functions (Slaters vs Gaussians) employed, an overall decent agreement is obtained.

摘要

定域分子轨道常用于化学键分析,但它们也可用于高效且全面地计算线性响应性质。虽然传统的正则分子轨道为激发态处理提供了充分的基础,但在这种离域轨道基组内,对不同激发态过程进行有化学意义的识别却很困难。在这项工作中,我们从一组初始的超分子正则分子轨道出发,提供了一种简单的一步自上而下嵌入程序,用于生成一组轨道,这些轨道在超分子层面是定域的,但在构成超分子的每个子系统上是离域的。使用基于此类定域轨道集的轨道划分方案,我们进一步提出了一种在含时密度泛函理论(TDDFT)的线性响应框架内构建局域激发态和电荷转移态的程序。该程序可直接获取近似的非绝热激发能,并且在Tamm-Dancoff近似下,还能得到它们相应的电子耦合——这些量在模拟复杂生物系统中的能量转移过程时至关重要。我们将我们的方法与最近基于子系统TDDFT使用投影算符开发的一种非绝热化程序进行了比较,后者会导出一组类似的工作方程。尽管这两种方法在采用的一般定域策略和所使用的基函数类型(斯莱特函数与高斯函数)方面有所不同,但总体上达成了相当不错的一致性。

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