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Influence of environment induced correlated fluctuations in electronic coupling on coherent excitation energy transfer dynamics in model photosynthetic systems

机译:电子耦合中环境引起的相关涨落对模型光合作用系统相干激发能传递动力学的影响

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摘要

Two-dimensional photon-echo experiments indicate that excitation energy transfer between chromophores near the reaction center of the photosynthetic purple bacterium Rhodobacter sphaeroides occurs coherently with decoherence times of hundreds of femtoseconds, comparable to the energy transfer time scale in these systems. The original explanation of this observation suggested that correlated fluctuations in chromophore excitation energies, driven by large scale protein motions could result in long lived coherent energy transfer dynamics. However, no significant site energy correlation has been found in recent molecular dynamics simulations of several model light harvesting systems. Instead, there is evidence of correlated fluctuations in site energy-electronic coupling and electronic coupling-electronic coupling. The roles of these different types of correlations in excitation energy transfer dynamics are not yet thoroughly understood, though the effects of site energy correlations have been well studied. In this paper, we introduce several general models that can realistically describe the effects of various types of correlated fluctuations in chromophore properties and systematically study the behavior of these models using general methods for treating dissipative quantum dynamics in complex multi-chromophore systems. The effects of correlation between site energy and inter-site electronic couplings are explored in a two state model of excitation energy transfer between the accessory bacteriochlorophyll and bacteriopheophytin in a reaction center system and we find that these types of correlated fluctuations can enhance or suppress coherence and transfer rate simultaneously. In contrast, models for correlated fluctuations in chromophore excitation energies show enhanced coherent dynamics but necessarily show decrease in excitation energy transfer rate accompanying such coherence enhancement. Finally, for a three state model of the Fenna-Matthews-Olsen light harvesting complex, we explore the influence of including correlations in inter-chromophore couplings between different chromophore dimers that share a common chromophore. We find that the relative sign of the different correlations can have profound influence on decoherence time and energy transfer rate and can provide sensitive control of relaxation in these complex quantum dynamical open systems.
机译:二维光子回波实验表明,在光合作用紫色细菌球形红球菌反应中心附近的生色团之间激发能量转移的相干时间为数百飞秒,与这些系统中的能量转移时间尺度相当。该观察结果的原始解释表明,由大规模蛋白质运动驱动的发色团激发能的相关波动可能导致长寿命的相干能量转移动力学。但是,在几种模型光收集系统的最新分子动力学模拟中,未发现明显的位能相关性。相反,有证据表明现场能量-电子耦合和电子耦合-电子耦合存在相关波动。尽管已经很好地研究了位能相关性的影响,但尚未完全了解这些不同类型的相关性在激发能传递动力学中的作用。在本文中,我们介绍了几个通用模型,这些模型可以逼真的描述各种类型的相关涨落对发色团性质的影响,并使用常规方法来处理复杂的多发色团系统中的耗散量子动力学,系统地研究这些模型的行为。在反应中心系统中辅助细菌叶绿素和细菌脱镁叶绿素之间的激发能转移的两种状态模型中,探索了位能与位间电子耦合之间的相关性影响,我们发现这些类型的相关涨落可以增强或抑制相干性。同时传输速率。相反,发色团激发能相关波动的模型显示出增强的相干动力学,但必然显示伴随这种相干性增强的激发能传递速率降低。最后,对于Fenna-Matthews-Olsen光收集复合体的三态模型,我们探索了在具有相同生色团的不同生色团二聚体之间的生色团间偶联中包括相关性的影响。我们发现,不同相关性的相对符号可以对退相干时间和能量传输速率产生深远影响,并且可以为这些复杂的量子动力学开放系统中的弛豫提供灵敏的控制。

著录项

  • 作者

    Huo Pengfei; Coker David F.;

  • 作者单位
  • 年度 2012
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  • 原文格式 PDF
  • 正文语种 {"code":"en","name":"English","id":9}
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