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准分子能量

Excimer Energies.

作者信息

Zhao Ruoqi, Hettich Christian, Zhang Jun, Liu Meiyi, Gao Jiali

机构信息

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

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

出版信息

J Phys Chem Lett. 2023 Mar 30;14(12):2917-2926. doi: 10.1021/acs.jpclett.3c00545. Epub 2023 Mar 17.

Abstract

A multistate energy decomposition analysis (MS-EDA) method is introduced for excimers using density functional theory. Although EDA has been widely applied to intermolecular interactions in the ground state, few methods are currently available for excited-state complexes. Here, the total energy of an excimer state is separated into exciton excitation energy Δ(|Ψ·Ψ⟩*), resulting from the state interaction between locally excited monomer states |Ψ·Ψ⟩ and |Ψ·Ψ⟩ , a superexchange stabilization energy Δ, originating from the mutual charge transfer between two monomers |Ψ·Ψ⟩ and |Ψ·Ψ⟩ , and an orbital-and-configuration delocalization term Δ due to the expansion of configuration space and block-localized orbitals to the fully delocalized dimer system. Although there is no net charge transfer in symmetric excimer cases, the resonance of charge-transfer states is critical to stabilizing the excimer. The monomer localized excited and charge-transfer states are variationally optimized, forming a minimal active space for nonorthogonal state interaction (NOSI) calculations in multistate density functional theory to yield the intermediate states for energy analysis. The present MS-EDA method focuses on properties unique to excited states, providing insights into exciton coupling, superexchange and delocalization energies. MS-EDA is illustrated on the acetone and pentacene excimer systems; three configurations of the latter case are examined, including the optimized excimer, a stacked configuration of two pentacene molecules and the fishbone orientation. It is found that excited-state energy splitting is strongly dependent on the relative energies of the monomer excited states and the phase-matching of the monomer wave functions.

摘要

本文介绍了一种基于密度泛函理论的用于准分子的多态能量分解分析(MS - EDA)方法。尽管能量分解分析已广泛应用于基态分子间相互作用,但目前适用于激发态复合物的方法却很少。在此,准分子态的总能量被分解为激子激发能Δ(|Ψ·Ψ⟩*),它由局域激发单体态|Ψ·Ψ⟩和|Ψ·Ψ⟩之间的态相互作用产生;超交换稳定能Δ,源于两个单体|Ψ·Ψ⟩和|Ψ·Ψ⟩之间的相互电荷转移;以及由于构型空间扩展和块定域轨道到完全离域二聚体系统的轨道和构型离域项Δ。在对称准分子情况下,尽管没有净电荷转移,但电荷转移态的共振对于稳定准分子至关重要。单体局域激发态和电荷转移态通过变分法进行优化,形成多态密度泛函理论中非正交态相互作用(NOSI)计算的最小活性空间,以产生用于能量分析的中间态。当前的MS - EDA方法专注于激发态特有的性质,为激子耦合、超交换和离域能提供了深入见解。在丙酮和并五苯准分子体系上展示了MS - EDA;研究了后者情况的三种构型,包括优化后的准分子、两个并五苯分子的堆叠构型和鱼骨取向。发现激发态能量分裂强烈依赖于单体激发态的相对能量和单体波函数的相位匹配。

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