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最优参考激发态方法:采用单参考耦合簇方法以多项式代价实现静态关联

Optimal-Reference Excited State Methods: Static Correlation at Polynomial Cost with Single-Reference Coupled-Cluster Approaches.

作者信息

Bintrim Sylvia J, Carter-Fenk Kevin

机构信息

Department of Chemistry, University of Pittsburgh, Pittsburgh, Pennsylvania 15218, United States.

出版信息

J Chem Theory Comput. 2025 Apr 22;21(8):4080-4094. doi: 10.1021/acs.jctc.5c00172. Epub 2025 Apr 1.

Abstract

Accurate yet efficient modeling of chemical systems with pronounced static correlation in their excited states remains a significant challenge in quantum chemistry, as most electronic structure methods that can adequately capture static correlation scale factorially with system size. Researchers are often left with no option but to use more affordable methods that may lack the accuracy required to model critical processes in photochemistry such as photolysis, photocatalysis, and nonadiabatic relaxation. A great deal of work has been dedicated to refining single-reference descriptions of static correlation in the ground state via "addition-by-subtraction" coupled cluster methods such as pair coupled cluster with double substitutions (pCCD), singlet-paired CCD (CCD0), triplet-paired CCD (CCD1), and CCD with frozen singlet- or triplet-paired amplitudes (CCDf0/CCDf1). By combining wave functions derived from these methods with the intermediate state representation (ISR), we gain insights into the extensibility of single-reference coupled cluster theory's coverage of static correlation to the excited state problem. Our CCDf1-ISR(2) approach is robust in the face of static correlation and provides enough dynamical correlation to accurately predict excitation energies to within about 0.2 eV in small organic molecules. We also highlight distinct advantages of the Hermitian ISR construction, such as the avoidance of pathological failures of equation-of-motion methods for excited state potential energy surface topology. Our results prompt us to continue exploring optimal single-reference theories (excited state approaches that leverage dependence on the initial reference wave function) as a potentially economical approach to the excited state static correlation problem.

摘要

在量子化学中,对激发态具有显著静态关联的化学系统进行精确且高效的建模仍然是一项重大挑战,因为大多数能够充分捕捉静态关联的电子结构方法会随着系统规模呈阶乘式增长。研究人员往往别无选择,只能使用更经济实惠但可能缺乏对光化学中关键过程(如光解、光催化和非绝热弛豫)建模所需精度的方法。大量工作致力于通过“加减结合”的耦合簇方法来完善基态静态关联的单参考描述,例如双取代对耦合簇(pCCD)、单重态配对CCD(CCD0)、三重态配对CCD(CCD1)以及具有冻结单重态或三重态配对振幅的CCD(CCDf0/CCDf1)。通过将这些方法导出的波函数与中间态表示(ISR)相结合,我们深入了解了单参考耦合簇理论对静态关联的覆盖范围扩展到激发态问题的可扩展性。我们的CCDf1 - ISR(2)方法在面对静态关联时表现稳健,并提供了足够的动态关联,能够在小有机分子中将激发能精确预测到约0.2 eV以内。我们还强调了厄米特ISR构建的独特优势,例如避免了用于激发态势能面拓扑的运动方程方法的病态失效。我们的结果促使我们继续探索最优单参考理论(利用对初始参考波函数的依赖性的激发态方法),将其作为解决激发态静态关联问题的一种潜在经济的方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/efdf/12020369/8c2ba2bdb90d/ct5c00172_0001.jpg

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