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振动强耦合下的极化激元弛豫:将腔分子动力学模拟与费米黄金规则速率进行比较

Polariton relaxation under vibrational strong coupling: Comparing cavity molecular dynamics simulations against Fermi's golden rule rate.

作者信息

Li Tao E, Nitzan Abraham, Subotnik Joseph E

机构信息

Department of Chemistry, University of Pennsylvania, Philadelphia, Pennsylvania 19104, USA.

出版信息

J Chem Phys. 2022 Apr 7;156(13):134106. doi: 10.1063/5.0079784.

DOI:10.1063/5.0079784
PMID:35395873
Abstract

Under vibrational strong coupling (VSC), the formation of molecular polaritons may significantly modify the photo-induced or thermal properties of molecules. In an effort to understand these intriguing modifications, both experimental and theoretical studies have focused on the ultrafast dynamics of vibrational polaritons. Here, following our recent work [Li et al., J. Chem. Phys. 154, 094124 (2021)], we systematically study the mechanism of polariton relaxation for liquid CO under a weak external pumping. Classical cavity molecular dynamics (CavMD) simulations confirm that polariton relaxation results from the combined effects of (i) cavity loss through the photonic component and (ii) dephasing of the bright-mode component to vibrational dark modes as mediated by intermolecular interactions. The latter polaritonic dephasing rate is proportional to the product of the weight of the bright mode in the polariton wave function and the spectral overlap between the polariton and dark modes. Both these factors are sensitive to parameters such as the Rabi splitting and cavity mode detuning. Compared to a Fermi's golden rule calculation based on a tight-binding harmonic model, CavMD yields a similar parameter dependence for the upper polariton relaxation lifetime but sometimes a modest disagreement for the lower polariton. We suggest that this disagreement results from polariton-enhanced molecular nonlinear absorption due to molecular anharmonicity, which is not included in our analytical model. We also summarize recent progress on probing nonreactive VSC dynamics with CavMD.

摘要

在振动强耦合(VSC)条件下,分子极化激元的形成可能会显著改变分子的光致或热性质。为了理解这些有趣的变化,实验和理论研究都聚焦于振动极化激元的超快动力学。在此,继我们最近的工作[Li等人,《化学物理杂志》154,094124(2021)]之后,我们系统地研究了在弱外部泵浦下液态CO中极化激元弛豫的机制。经典腔分子动力学(CavMD)模拟证实,极化激元弛豫是由以下综合效应导致的:(i)通过光子成分的腔损耗;(ii)由分子间相互作用介导的亮模式成分向振动暗模式的退相。后一种极化激元退相速率与极化激元波函数中亮模式的权重以及极化激元与暗模式之间的光谱重叠的乘积成正比。这两个因素都对诸如拉比分裂和腔模失谐等参数敏感。与基于紧束缚谐波模型的费米黄金规则计算相比,CavMD对于上极化激元弛豫寿命产生了类似的参数依赖性,但有时对于下极化激元存在适度的差异。我们认为这种差异是由于分子非谐性导致的极化激元增强的分子非线性吸收引起的,而这并未包含在我们的解析模型中。我们还总结了利用CavMD探测非反应性VSC动力学的最新进展。

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