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首页> 外文期刊>The Journal of Chemical Physics >Path-integral Monte Carlo simulations for electronic dynamics on molecular chains. I. Sequential hopping and super exchange
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Path-integral Monte Carlo simulations for electronic dynamics on molecular chains. I. Sequential hopping and super exchange

机译:分子链上电子动力学的路径积分蒙特卡罗模拟。一,顺序跳变和超级交换

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An improved real-time quantum Monte Carlo procedure is presented and applied to describe the electronic transfer dynamics along molecular chains. The model consists of discrete electronic sites coupled to a thermal environment which is integrated out exactly within the path integral formulation. The approach is numerically exact and its results reduce to known analytical findings (Marcus theory, golden rule) in proper limits. Special attention is paid to the role of superexchange and sequential hopping at lower temperatures in symmetric donor-bridge-acceptor systems. In contrast to previous approximate studies, superexchange turns out to play a significant role only for extremely high-lying bridges where the transfer is basically frozen or for extremely low temperatures where for weaker dissipation a description in terms of rate constants is no longer feasible. For bridges with increasing length an algebraic decrease of the yield is found for short as well as for long bridges. The approach can be extended to electronic systems with more complicated topologies including impurities and in presence of external time-dependent forces. (C) 2004 American Institute of Physics.
机译:提出了一种改进的实时量子蒙特卡洛程序并将其用于描述沿分子链的电子转移动力学。该模型由耦合到热环境的离散电子站点组成,该热环境正好在路径积分公式中完全集成。该方法在数值上是精确的,并且其结果在适当的范围内简化为已知的分析发现(Marcus理论,黄金法则)。在对称的供体-桥-受体系统中,要特别注意超级交换和在较低温度下连续跳变的作用。与以前的近似研究相比,超级交换仅对基本上冻结了传输的极高的桥梁或对于较弱的耗散率常数的描述不再可行的极端低温发挥了重要作用。对于长度增加的桥梁,无论是长桥梁还是短桥梁,产量的代数降低。该方法可以扩展到具有更复杂拓扑结构的电子系统,包括杂质以及存在外部时间相关的力。 (C)2004年美国物理研究所。

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