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振动强耦合下分子系综中的腔修饰局域和非局域电子相互作用

Cavity-modified local and non-local electronic interactions in molecular ensembles under vibrational strong coupling.

作者信息

Fischer Eric W

机构信息

Institut für Chemie, Humboldt-Universität zu Berlin, Brook-Taylor-Straße 2, D-12489 Berlin, Germany.

出版信息

J Chem Phys. 2024 Oct 28;161(16). doi: 10.1063/5.0231528.

Abstract

Resonant vibrational strong coupling (VSC) between molecular vibrations and quantized field modes of low-frequency optical cavities constitutes the conceptual cornerstone of vibro-polaritonic chemistry. In this work, we theoretically investigate the role of complementary nonresonant electron-photon interactions in the cavity Born-Oppenheimer (CBO) approximation. In particular, we study cavity-induced modifications of local and non-local electronic interactions in dipole-coupled molecular ensembles under VSC. Methodologically, we combine CBO perturbation theory (CBO-PT) [E. W. Fischer and P. Saalfrank, J. Chem. Theory Comput. 19, 7215 (2023)] with non-perturbative CBO Hartree-Fock (HF) and coupled cluster (CC) theories. In a first step, we derive up to second-order CBO-PT cavity potential energy surfaces, which reveal non-trivial intra- and inter-molecular corrections induced by the cavity. We then introduce the concept of a cavity reaction potential (CRP), minimizing the electronic energy in the cavity subspace to discuss vibro-polaritonic reaction mechanisms. We present reformulations of CBO-HF and CBO-CC approaches for CRPs and derive second-order approximate CRPs from CBO-PT for unimolecular and bimolecular scenarios. In the unimolecular case, we find small local modifications of molecular potential energy surfaces for selected isomerization reactions dominantly captured by the first-order dipole fluctuation correction. Excellent agreement between CBO-PT and non-perturbative wave function results indicates minor VSC-induced state relaxation effects in the single-molecule limit. In the bimolecular scenario, CBO-PT reveals an explicit coupling of interacting dimers to cavity modes besides cavity-polarization dependent dipole-induced dipole and van der Waals interactions with enhanced long-range character. An illustrative CBO-coupled cluster theory with singles and doubles-based numerical analysis of selected molecular dimer models provides a complementary non-perturbative perspective on cavity-modified intermolecular interactions under VSC.

摘要

分子振动与低频光学腔的量子化场模之间的共振振动强耦合(VSC)构成了振动极化子化学的概念基石。在这项工作中,我们在腔玻恩 - 奥本海默(CBO)近似下从理论上研究了互补非共振电子 - 光子相互作用的作用。特别是,我们研究了在VSC下偶极耦合分子系综中腔诱导的局部和非局部电子相互作用修正。在方法上,我们将CBO微扰理论(CBO - PT)[E. W. Fischer和P. Saalfrank,J. Chem. Theory Comput. 19,7215(2023)]与非微扰CBO哈特里 - 福克(HF)和耦合簇(CC)理论相结合。第一步,我们推导了直至二阶CBO - PT腔势能面,揭示了由腔诱导的非平凡分子内和分子间修正。然后我们引入腔反应势(CRP)的概念,通过最小化腔子空间中的电子能量来讨论振动极化子反应机制。我们给出了CBO - HF和CBO - CC方法用于CRP的重新表述,并从CBO - PT推导了单分子和双分子情形下的二阶近似CRP。在单分子情形下,我们发现对于选定的异构化反应,分子势能面存在小的局部修正,主要由一阶偶极涨落修正捕获。CBO - PT与非微扰波函数结果之间的出色一致性表明在单分子极限下VSC诱导的态弛豫效应较小。在双分子情形下,CBO - PT揭示了相互作用二聚体与腔模之间的显式耦合,此外还有与增强的长程特性相关的依赖于腔极化的偶极诱导偶极和范德华相互作用。基于选定分子二聚体模型的单双激发CBO耦合簇理论的数值分析提供了关于VSC下腔修饰分子间相互作用的互补非微扰观点。

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