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Effects of vibrational energy relaxation and reverse reaction on electron transfer kinetics and fluorescence line shapes in solution

机译:振动能弛豫和逆反应对溶液中电子转移动力学和荧光线形状的影响

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摘要

The existing theoretical formulations of electron transfer reactions (ETR) neglect the effects of vibrational energy relaxation (VER) and do not include higher vibrational states in both the reactant and the product surfaces. Both of these aspects can be important for photo-induced electron transfer reactions, particularly for those which are in the Marcus inverted regime. In this article, a theoretical formulation is presented which describes the two aspects. The formalism requires an extension of the hybrid model introduced earlier by Barbara et al. [Science 256, 975 (1992)]. We model a general electron transfer as a two-surface reaction where overlap between the vibrational levels of the two surfaces create multiple, broad reaction windows. The strength and the accessibility of each window is determined by many factors. We find that when VER and reverse transfer are present, the time dependence of the survival probability of the reactant differs significantly (from the case when they are assumed to be absent) for a large range of values of the solvent reorganization energy (lambda X), quantum mode reorganization energy (lambda q), electronic coupling constant (Vel) and vibrational energy relaxation rate (kVER). Several interesting results, such as a transient rise in the population of the zeroth vibrational level of the reactant surface, a Kramers (or Grote–Hynes) type recrossing due to back reaction and a pronounced role of the initial Gaussian component of the solvation time correlation function in the dynamics of electron transfer reaction, are observed. Significant dependence of the electron transfer rate on the ultrafast Gaussian component of solvation dynamics is predicted for a range of values of Vel, although dependence on average solvation time can be weak. Another result is that, although VER alters relaxation dynamics in both the product and the reactant surfaces noticeably, the average rate of electron transfer is found to be weakly dependent on kVER for a range of values of Vel; this independence breaks down only at very small values of Vel. In addition, the hybrid model is employed to study the time resolved fluorescence line shape for the electron transfer reactions. It is found that VER can have a significant influence on the fluorescence spectrum. The possibility of vibrational state resolved spectra is investigated.
机译:电子转移反应(ETR)的现有理论公式忽略了振动能弛豫(VER)的影响,并且在反应物和产物表面均未包含较高的振动状态。这两个方面对于光诱导的电子转移反应都是重要的,特别是对于那些处于马库斯倒立状态的反应。在本文中,提出了描述这两个方面的理论表述。形式主义要求扩展Barbara等人先前引入的混合模型。 [Science 256,975(1992)]。我们将一般的电子传递建模为两个表面的反应,其中两个表面的振动水平之间的重叠会产生多个宽的反应窗口。每个窗口的强度和可访问性由许多因素决定。我们发现,当存在VER和反向转移时,对于很大范围的溶剂重组能(λX),反应物的存活概率与时间的依赖性显着不同(与假定不存在的情况相比)。 ),量子模式重组能量( lambda q),电子耦合常数(Vel)和振动能量弛豫率(kVER)。一些有趣的结果,例如反应物表面的第零振动能级的瞬时增加,由于逆反应而导致的Kramers(或Grote-Hynes)类型交叉以及溶剂化时间相关的初始高斯分量的显着作用观察到电子转移反应动力学中的功能。尽管对于平均溶剂化时间的依赖性较弱,但对于一定范围的Vel值,可以预测电子传递速率对溶剂化动力学的超快高斯分量的显着依赖性。另一个结果是,尽管VER显着改变了产物和反应物表面的弛豫动力学,但发现在一定的Vel值范围内,平均电子传递速率几乎不依赖于kVER。这种独立性仅在很小的Vel值下才会分解。另外,采用混合模型研究时间分辨的荧光线形状,用于电子转移反应。发现VER对荧光光谱具有显着影响。研究了振动状态分辨谱的可能性。

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