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Effects of system-bath coupling on a photosynthetic heat engine: A polaron master-equation approach

机译:系统浴耦合对光合热动发动机的影响:极化子跨越式方法

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Stimulated by suggestions of quantum effects in energy transport in photosynthesis, the fundamental principles responsible for the near-unit efficiency of the conversion of solar to chemical energy became active again in recent years. Under natural conditions, the formation of stable charge-separation states in bacteria and plant reaction centers is strongly affected by the coupling of electronic degrees of freedom to awide range of vibrational motions. These inspire and motivate us to explore the effects of the environment on the operation of such complexes. In this paper, we apply the polaron master equation, which offers the possibilities to interpolate between weak and strong system-bath coupling, to study how system-bath couplings affect the exciton-transfer processes in the Photosystem II reaction center described by a quantum heat engine (QHE) model over a wide parameter range. The effects of bath correlation and temperature, together with the combined effects of these factors are also discussed in detail.We interpret these results in terms of noise-assisted transport effect and dynamical localization, which correspond to two mechanisms underpinning the transfer process in photosynthetic complexes: One is resonance energy transfer and the other is the dynamical localization effect captured by the polaron master equation. The effects of system-bath coupling and bath correlation are incorporated in the effective system-bath coupling strength determining whether noise-assisted transport effect or dynamical localization dominates the dynamics and temperature modulates the balance of the two mechanisms. Furthermore, these two mechanisms can be attributed to one physical origin: bath-induced fluctuations. The two mechanisms are manifestations of the dual role played by bath-induced fluctuations depending on the range of parameters. The origin and role of coherence are also discussed. It is the constructive interplay between noise and coherent dynamics, rather than
机译:通过对光合作用中能量运输中的量子效应的建议刺激,近年来,近年来,近单位效率的基本原则近年来再次活跃。在自然条件下,在细菌和植物反应中心中形成稳定的电荷分离状态受电子自由度的耦合来唤醒范围的振动运动的影响。这些激励和激励我们探索环境对这些复合物的运作的影响。在本文中,我们应用PolarOn总体方程,其提供了在弱和强的系统浴耦合之间插入的可能性,研究系统浴耦合如何影响量子热量描述的电极上II反应中心中的激子转移过程发动机(QHE)模型在广泛的参数范围内。还详细讨论了浴相关性和温度的影响以及这些因素的组合效果。我们在噪声辅助运输效果和动态定位方面解释这些结果,这对应于在光合复合物中的转移过程中的两种机制:一个是谐振能量转移,另一个是PolarOn主站式捕获的动态定位效果。系统浴耦合和浴相关的效果结合在有效的系统浴耦合强度中,确定噪声辅助运输效果或动态定位是否主导动态和温度调制两个机构的平衡。此外,这两个机制可以归因于一个物理来源:浴室引起的波动。这两个机制是浴室引起的波动根据参数范围而发挥的双重作用的表现。还讨论了一致性的起源和作用。它是噪声和相干动态之间的建设性相互作用,而不是

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