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Symmetrical windowing for quantum states in quasi-classical trajectory simulations: Application to electron transfer

机译:准经典轨迹模拟中量子态的对称窗:在电子转移中的应用

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It has recently been shown [S. J. Cotton and W. H. Miller, J. Chem. Phys. 139, 234112 (2013)] that a symmetrical windowing quasi-classical (SQC) approach [S. J. Cotton and W. H. Miller, J. Phys. Chem. A 117, 7190 (2013)] applied to the Meyer-Miller model [H.-D. Meyer and W. H. Miller, J. Chem. Phys. 70, 3214 (1979)] for the electronic degrees of freedom in electronically non-adiabatic dynamics is capable of quantitatively reproducing quantum mechanical results for a variety of test applications, including cases where "quantum" coherence effects are significant. Here we apply this same SQC methodology, within a flux-side correlation function framework, to calculate thermal rate constants corresponding to several proposed models of electron transfer processes [P. Huo, T. F. Miller III, and D. F. Coker, J. Chem. Phys. 139, 151103 (2013); A. R. Menzeleev, N. Ananth, and T. F. Miller III, J. Chem. Phys. 135, 074106 (2011)]. Good quantitative agreement with Marcus Theory is obtained over several orders of magnitude variation in non-adiabatic coupling. Moreover, the "inverted regime" in thermal rate constants (with increasing bias) known from Marcus Theory is also reproduced with good accuracy by this very simple classical approach. The SQC treatment is also applied to a recent model of photoinduced proton coupled electron transfer [C. Venkataraman, A. V. Soudackov, and S. Hammes-Schiffer, J. Chem. Phys. 131, 154502 (2009)] and population decay of the photoexcited donor state is found to be in reasonable agreement with results calculated via reduced density matrix theory.
机译:最近已显示[S. J.Cotton和W.H.Miller,J.Chem。物理139,234112(2013)]提出一种对称加窗准经典(SQC)方法[S. J. Cotton和W. H. Miller,J。Phys。化学117,7190(2013)]应用于Meyer-Miller模型[H.-D. Meyer and W. H. Miller,J. Chem。物理70,3214(1979)]的非绝热动力学中的电子自由度能够定量再现各种测试应用的量子力学结果,包括“量子”相干效应显着的情况。在这里,我们在通量侧相关函数框架内应用相同的SQC方法来计算对应于电子传输过程的几种建议模型的热速率常数[P. Huo,T。F. Miller III和D. F. Coker,J。Chem。物理139,151103(2013); A. R. Menzeleev,N. Ananth和T. F. Miller III,J. Chem。物理135,074106(2011)]。在非绝热耦合中,几个数量级的变化获得了与Marcus理论的良好定量一致性。此外,通过这种非常简单的经典方法,也可以很好地再现马库斯理论已知的热速率常数的“倒置状态”(随着偏差的增加)。 SQC处理还应用于光诱导质子耦合电子转移的最新模型[C. Venkataraman,A. V. Soudackov和S. Hammes-Schiffer,J. Chem。物理131,154502(2009)],发现光激发的供体态的种群衰减与通过减少密度矩阵理论计算的结果合理吻合。

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