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基于投影嵌入法的激发能对运动方程耦合簇单双激发方法(EOM-CCSD)极限的拓展

Pushing the Limits of EOM-CCSD with Projector-Based Embedding for Excitation Energies.

作者信息

Bennie Simon J, Curchod Basile F E, Manby Frederick R, Glowacki David R

机构信息

Centre for Computational Chemistry, School of Chemistry, University of Bristol , Bristol, BS8 1TH, United Kingdom.

Department of Computer Science, University of Bristol , Bristol, BS8 1UB, United Kingdom.

出版信息

J Phys Chem Lett. 2017 Nov 16;8(22):5559-5565. doi: 10.1021/acs.jpclett.7b02500. Epub 2017 Nov 2.

Abstract

The calculation of accurate excitation energies using ab initio electronic structure methods such as standard equation of motion coupled cluster singles and doubles (EOM-CCSD) has been cost prohibitive for large systems. In this work, we use a simple projector-based embedding scheme to calculate the EOM-CCSD excitation energies of acrolein solvated in water molecules modeled using density functional theory (DFT). We demonstrate the accuracy of this approach gives excitation energies within 0.01 eV of full EOM-CCSD, but with significantly reduced computational cost. This approach is also shown to be relatively invariant to the choice of functional used in the environment and allows for the description of systems with large numbers of basis functions (>1000) to be treated using state-of-the-art wave function methods. The flexibility of embedding to select orbitals to add to the excited-state method provides insights into the origins of the excitations and can reduce artifacts that could arise in traditional linear response time-dependent DFT (LR-TDDFT).

摘要

使用诸如标准运动方程耦合簇单双激发(EOM - CCSD)等从头算电子结构方法来计算精确的激发能,对于大型系统而言成本过高。在这项工作中,我们使用一种基于简单投影算符的嵌入方案,来计算在采用密度泛函理论(DFT)建模的水分子中溶剂化的丙烯醛的EOM - CCSD激发能。我们证明了这种方法给出的激发能与完整的EOM - CCSD激发能相差在0.01 eV以内,但计算成本显著降低。该方法还被证明对于环境中所使用泛函的选择相对不敏感,并且能够使用最先进的波函数方法来处理具有大量基函数(>1000)的系统。嵌入过程中选择添加到激发态方法的轨道的灵活性,为激发的起源提供了见解,并且可以减少传统线性响应含时密度泛函理论(LR - TDDFT)中可能出现的伪像。

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