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用于激发态行列式约束优化的块局域波函数的推广。

Generalization of Block-Localized Wave Function for Constrained Optimization of Excited Determinants.

机构信息

Laboratory of Theoretical and Computational Chemistry, Institute of Theoretical Chemistry, Jilin University, Changchun, Jilin 130023, China.

Institute of Systems and Physical Biology, Shenzhen Bay Laboratory, Shenzhen 518055, China.

出版信息

J Chem Theory Comput. 2021 Jan 12;17(1):277-289. doi: 10.1021/acs.jctc.0c01049. Epub 2020 Dec 24.

Abstract

The block-localized wave function method is useful to provide insights on chemical bonding and intermolecular interactions through energy decomposition analysis. The method relies on block localization of molecular orbitals (MOs) by constraining the orbitals to basis functions within given blocks. Here, a generalized block-localized orbital (GBLO) method is described to allow both physically localized and delocalized MOs to be constrained in orbital-block definitions. Consequently, GBLO optimization can be conveniently tailored by imposing specific constraints. The GBLO method is illustrated by three examples: (1) constrained polarization response orbitals through dipole and quadrupole perturbation in a water dimer complex, (2) the ground and first excited-state potential energy curves of ethene about its C-C bond rotation, and (3) excitation energies of double electron excited states. Multistate density functional theory is used to determine the energies of the adiabatic ground and excited states using a minimal active space (MAS) comprising specifically charge-constrained and excited determinant configurations that are variationally optimized by the GBLO method. We find that the GBLO expansion that includes delocalized MOs in configurational blocks significantly reduces computational errors in comparison with physical block localization, and the computed ground- and excited-state energies are in good accordance with experiments and results obtained from multireference configuration interaction calculations.

摘要

块局域波函数方法通过能量分解分析有助于深入了解化学成键和分子间相互作用。该方法依赖于通过将轨道约束在给定块内的基函数上来对分子轨道(MOs)进行块局域化。这里描述了一种广义块局域轨道(GBLO)方法,允许将物理局域和离域 MOs 约束在轨道块定义中。因此,可以通过施加特定约束方便地调整 GBLO 优化。GBLO 方法通过三个示例进行说明:(1)在水分子二聚体复合物中通过偶极和四极微扰约束极化响应轨道,(2)乙烯关于其 C-C 键旋转的基态和第一激发态势能曲线,以及(3)双电子激发态的激发能。多态密度泛函理论用于通过包含特定电荷约束和激发行列式构型的最小活性空间(MAS)确定绝热基态和激发态的能量,这些构型通过 GBLO 方法进行变分优化。我们发现,与物理块局域化相比,在构型块中包含离域 MOs 的 GBLO 展开显著降低了计算误差,并且计算得到的基态和激发态能量与实验和多参考组态相互作用计算结果吻合良好。

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