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Photosynthetic light harvesting: excitons and coherence

机译:光合光收集:激子和相干性

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摘要

Photosynthesis begins with light harvesting, where specialized pigment–protein complexes transform sunlight into electronic excitations delivered to reaction centres to initiate charge separation. There is evidence that quantum coherence between electronic excited states plays a role in energy transfer. In this review, we discuss how quantum coherence manifests in photosynthetic light harvesting and its implications. We begin by examining the concept of an exciton, an excited electronic state delocalized over several spatially separated molecules, which is the most widely available signature of quantum coherence in light harvesting. We then discuss recent results concerning the possibility that quantum coherence between electronically excited states of donors and acceptors may give rise to a quantum coherent evolution of excitations, modifying the traditional incoherent picture of energy transfer. Key to this (partially) coherent energy transfer appears to be the structure of the environment, in particular the participation of non-equilibrium vibrational modes. We discuss the open questions and controversies regarding quantum coherent energy transfer and how these can be addressed using new experimental techniques.
机译:光合作用始于光收集,在那里特殊的色素-蛋白质复合物将阳光转化为电子激发,传递到反应中心以启动电荷分离。有证据表明,电子激发态之间的量子相干性在能量转移中起作用。在这篇综述中,我们讨论了量子相干如何在光合光收获中表现出来及其含义。我们首先研究激子的概念,激子是在几个空间分离的分子上离域的激发电子态,它是光收集中量子相干性最广泛使用的特征。然后,我们讨论了有关供体和受体电子激发态之间的量子相干性可能引起激发的量子相干演化,修改了传统的能量传递非相干现象的可能性的最新结果。这种(部分)相干能量传递的关键似乎是环境的结构,尤其是非平衡振动模式的参与。我们讨论有关量子相干能量转移的开放性问题和争议,以及如何使用新的实验技术解决这些问题。

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