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Quantum coherence in photosynthesis for efficient solar-energy conversion

机译:光合作用中的量子相干性,可实现高效的太阳能转换

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摘要

The crucial step in the conversion of solar to chemical energy in photosynthesis takes place in the reaction centre, where the absorbed excitation energy is converted into a stable charge-separated state by ultrafast electron transfer events. However, the fundamental mechanism responsible for the near-unity quantum efficiency of this process is unknown. Here we elucidate the role of coherence in determining the efficiency of charge separation in the plant photosystem II reaction centre by comprehensively combining experiment (two-dimensional electronic spectroscopy) and theory (Redfield theory). We reveal the presence of electronic coherence between excitons as well as between exciton and charge-transfer states that we argue to be maintained by vibrational modes. Furthermore, we present evidence for the strong correlation between the degree of electronic coherence and efficient and ultrafast charge separation. We propose that this coherent mechanism will inspire the development of new energy technologies.
机译:在光合作用中将太阳能转化为化学能的关键步骤发生在反应中心,在反应中心,吸收的激发能通过超快电子转移事件转化为稳定的电荷分离状态。但是,导致该过程接近统一的量子效率的基本机理尚不清楚。在这里,我们通过综合结合实验(二维电子光谱)和理论(Redfield理论)来阐明相干性在确定植物光系统II反应中心中电荷分离效率方面的作用。我们揭示了激子之间以及激子和电荷转移状态之间电子相干的存在,我们认为这是通过振动模式来维持的。此外,我们为电子相干度与有效和超快电荷分离之间的强烈关联提供了证据。我们建议,这种一致的机制将激励新能源技术的发展。

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