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From the Cover: Theoretical examination of quantum coherence in a photosynthetic system at physiological temperature

机译:从封面开始:在生理温度下光合作用系统中量子相干性的理论研究

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摘要

The observation of long-lived electronic coherence in a photosynthetic pigment–protein complex, the Fenna–Matthews–Olson (FMO) complex, is suggestive that quantum coherence might play a significant role in achieving the remarkable efficiency of photosynthetic electronic energy transfer (EET), although the data were acquired at cryogenic temperature [Engel GS, et al. (2007) Evidence for wavelike energy transfer through quantum coherence in photosynthetic systems. Nature 446:782–786]. In this paper, the spatial and temporal dynamics of EET through the FMO complex at physiological temperature are investigated theoretically. The numerical results reveal that quantum wave-like motion persists for several hundred femtoseconds even at physiological temperature, and suggest that the FMO complex may work as a rectifier for unidirectional energy flow from the peripheral light-harvesting antenna to the reaction center complex by taking advantage of quantum coherence and the energy landscape of pigments tuned by the protein scaffold. A potential role of quantum coherence is to overcome local energetic traps and aid efficient trapping of electronic energy by the pigments facing the reaction center complex.
机译:在光合色素-蛋白质复合物芬纳-马修斯-奥尔森(FMO)复合物中长寿命电子相干性的观察表明,量子相干性可能在实现光合电子能量转移(EET)的显着效率中起重要作用,尽管数据是在低温下获得的[Engel GS等。 (2007)通过光合系统中的量子相干性进行波状能量转移的证据。自然446:782–786]。从理论上研究了FMO络合物在生理温度下EET的时空动态。数值结果表明,即使在生理温度下,类似量子波的运动也可以持续数百飞秒,并且表明FMO配合物可以利用从边缘光收集天线到反应中心配合物的单向能量流作为整流器。蛋白质支架调节的量子相干性和颜料的能量分布。量子相干的潜在作用是克服局部高能陷阱,并通过面向反应中心配合物的颜料帮助有效捕获电子能量。

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