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簇微扰理论IX:耦合簇单双激发基态能量的微扰级数

Cluster perturbation theory IX: Perturbation series for the coupled cluster singles and doubles ground state energy.

作者信息

Hillers-Bendtsen Andreas Erbs, Jensen Frank, Mikkelsen Kurt V, Olsen Jeppe, Jørgensen Poul

机构信息

Department of Chemistry, University of Copenhagen, Universitetsparken 5, DK 2100 Copenhagen Ø, Denmark.

Department of Chemistry, Aarhus University, Langelandsgade 140, DK 8000 Aarhus C, Denmark.

出版信息

J Chem Phys. 2024 Mar 14;160(10). doi: 10.1063/5.0192388.

Abstract

In this paper, we develop and analyze a number of perturbation series that target the coupled cluster singles and doubles (CCSD) ground state energy. We show how classical Møller-Plesset perturbation theory series can be restructured to target the CCSD energy based on a reference CCS calculation and how the corresponding cluster perturbation series differs from the classical Møller-Plesset perturbation series. Subsequently, we reformulate these series using the coupled cluster Lagrangian framework to obtain series, where fourth and fifth order energies are determined only using parameters through second order. To test the methods, we perform a series of test calculations on molecular photoswitches of both total energies and reaction energies. We find that the fifth order reaction energies are of CCSD quality and that they are of comparable accuracy to state-of-the-art approximations to the CCSD energy based on local pair natural orbitals. The advantage of the present approach over local correlation methods is the absence of user defined threshold parameters for neglecting or approximating contributions to the correlation energy. Fixed threshold parameters lead to discontinuous energy surfaces, although this effect is often small enough to be ignored, but the present approach has a differentiable energy that will facilitate derivation and implementation of gradients and higher derivatives. A further advantage is that the calculation of the perturbation correction is non-iterative and can, therefore, be calculated in parallel, leading to a short time-to-solution.

摘要

在本文中,我们开发并分析了一系列针对耦合簇单双激发(CCSD)基态能量的微扰级数。我们展示了如何基于参考CC计算对经典的莫勒-普列斯特定则微扰理论级数进行重构以针对CCSD能量,以及相应的簇微扰级数与经典的莫勒-普列斯特定则微扰级数有何不同。随后,我们使用耦合簇拉格朗日框架对这些级数进行重新表述,以获得仅通过二阶参数来确定四阶和五阶能量的级数。为了测试这些方法,我们对分子光开关的总能量和反应能量进行了一系列测试计算。我们发现五阶反应能量具有CCSD质量,并且它们与基于局部对自然轨道的CCSD能量的最新近似具有相当的精度。本方法相对于局部相关方法的优势在于不存在用于忽略或近似相关能贡献的用户定义阈值参数。固定的阈值参数会导致能量表面不连续,尽管这种效应通常小到可以忽略,但本方法具有可微的能量,这将有助于梯度和高阶导数的推导与实现。另一个优势是微扰校正的计算是非迭代的,因此可以并行计算,从而缩短求解时间。

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