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耦合内球振动模式的光诱导电子转移反应瞬态吸收泵浦-探测信号的混合量子-经典模拟

Mixed Quantum-Classical Simulations of Transient Absorption Pump-Probe Signals for a Photo-Induced Electron Transfer Reaction Coupled to an Inner-Sphere Vibrational Mode.

作者信息

Martinez Franz, Hanna Gabriel

机构信息

Department of Chemistry, University of Alberta , Edmonton, Alberta T6G 2R3, Canada.

出版信息

J Phys Chem A. 2016 May 19;120(19):3196-205. doi: 10.1021/acs.jpca.5b11727. Epub 2016 Feb 2.

DOI:10.1021/acs.jpca.5b11727
PMID:26766568
Abstract

In a previous study (Martinez, F.; Hanna, G. Chem. Phys. Lett. 2013, 573, 77-83), we demonstrated the ability of two approximate solutions of the quantum-classical Liouville equation (QCLE) for qualitatively capturing the electronic dynamics in the pump-probe transient absorption (TA) signal of a model of a condensed phase photoinduced electron transfer reaction whose ground and excited donor states have the same equilibrium geometry. However, the question remained as to the ability of these solutions to treat the more complex situation in which the electronic states are coupled to a low-frequency inner-sphere harmonic vibrational mode (representing an intramolecular mode of the donor-acceptor complex) that shifts their equilibrium geometries with respect to each other and thereby gives rise to signatures of vibrational dynamics in the TA signal. Thus, in this study, we investigated this situation by treating the vibrational mode both quantum mechanically and classically within the context of the approximate Poisson bracket mapping equation (PBME) and forward-backward trajectory solutions (FBTS) of the QCLE. Depending on the definition of the quantum subsystem, both PBME and FBTS are capable of qualitatively capturing several of the main features in the exact TA signal and quantitatively capturing the characteristic time scale of the vibrational dynamics, despite the moderately strong subsystem-bath coupling in this model. Particularly, we found that treating the vibrational mode quantum mechanically using either PBME or FBTS better captures the signatures of the vibrational dynamics, while treating it classically using FBTS better captures the decay in the signal. These findings underscore the utility of the PBME and FBTS approaches for efficiently modeling and interpreting TA signals.

摘要

在之前的一项研究中(Martinez, F.; Hanna, G. 《化学物理快报》2013年,第573卷,第77 - 83页),我们证明了量子经典刘维尔方程(QCLE)的两种近似解能够定性地捕捉凝聚相光诱导电子转移反应模型的泵浦 - 探测瞬态吸收(TA)信号中的电子动力学,该模型的基态和激发态供体具有相同的平衡几何结构。然而,这些解处理更复杂情况的能力仍存在疑问,在这种情况下,电子态与低频内球谐振动模式(代表供体 - 受体复合物的分子内模式)耦合,该振动模式使它们的平衡几何结构相互偏移,从而在TA信号中产生振动动力学特征。因此,在本研究中,我们通过在QCLE的近似泊松括号映射方程(PBME)和向前 - 向后轨迹解(FBTS)的框架内,对振动模式进行量子力学和经典处理来研究这种情况。根据量子子系统的定义,尽管该模型中存在适度较强的子系统 - 浴耦合,但PBME和FBTS都能够定性地捕捉精确TA信号中的几个主要特征,并定量地捕捉振动动力学的特征时间尺度。特别是,我们发现使用PBME或FBTS对振动模式进行量子力学处理能更好地捕捉振动动力学特征,而使用FBTS对其进行经典处理能更好地捕捉信号的衰减。这些发现强调了PBME和FBTS方法在有效建模和解释TA信号方面的实用性。

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