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Electronic coherence lifetimes of the Fenna–Matthews–Olson complex and light harvesting complex II

机译:FENNA-MATTHEWS-OLSON复合物的电子相干寿命和光收获复合体II

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The study of coherence between excitonic states in naturally occurring photosynthetic systems offers tantalizing prospects of uncovering mechanisms of efficient energy transport. However, experimental evidence of functionally relevant coherences in wild-type proteins has been tentative, leading to uncertainty in their importance at physiological conditions. Here, we extract the electronic coherence lifetime and frequency using a signal subtraction procedure in two model pigment-protein-complexes (PPCs), light harvesting complex II (LH2) and the Fenna–Matthews–Olson complex (FMO), and find that the coherence lifetimes occur at the same timescale (<100 fs) as energy transport between states at the energy level difference equal to the coherence energy. The pigment monomer bacteriochlorophyll a (BChl a ) shows no electronic coherences, supporting our methodology of removing long-lived vibrational coherences that have obfuscated previous assignments. This correlation of timescales and energy between coherences and energy transport reestablishes the time and energy scales that quantum processes may play a role in energy transport.
机译:自然发生的光合体系中兴趣状态相干性的研究提供了阐述了有效能源运输机制的诱惑前景。然而,野生型蛋白质中功能相关的一致性的实验证据已经暂时暂定,导致其在生理条件的重要性中的不确定性。这里,我们使用两种模型颜料 - 蛋白质 - 络合物(PPC)中的信号减法过程提取电子相干寿命和频率,光收集复合物II(LH2)和Fenna-Matthews-Olson综合体(FMO),并找到相干寿命在与能量水平差之间的状态之间的能量传输相同的时间段(<100 fs),等于相干能量。颜料单体胆胆胰酰β(BCHLa)没有显示电子一致性,支持我们消除已经困扰以前的任务的长期振动一致性的方法。相干和能量运输之间的时间尺度和能量的这种相关性重新建立了量子过程可能在能量运输中发挥作用的时间和能量尺度。

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