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Unravelling Coherent Dynamics and Energy Dissipation in Photosynthetic Complexes by 2D Spectroscopy

机译:通过二维光谱揭示光合配合物中的相干动力学和能量耗散

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摘要

Spectroscopic studies of light harvesting and the subsequent energy conversion in photosynthesis can track quantum dynamics happening on the microscopic level. The Fenna-Matthews-Olson complex of the photosynthetic green sulfur bacteria Chlorobium tepidum is a prototype efficient light-harvesting antenna: it stores the captured photon energy in the form of excitons (collective excitations), which are subsequently converted to chemical energy with almost 100% efficiency. These excitons show an elaborate relaxation pattern involving coherent and incoherent pathways. We make use of the complex chirality and fundamental symmetries of multidimensional optical signals to design new sequences of ultrashort laser pulses that can distinguish between coherent quantum oscillations and incoherent energy dissipation during the exciton relaxation. The cooperative dynamical features, which reflect the coherent nature of excitations, are amplified. The extent of quantum oscillations and their timescales in photosynthesis can be readily extracted from the designed signals, showing that cooperativity is maintained during energy transport in the Fenna-Matthews-Olson complex. The proposed pulse sequences may also be applied to reveal information on the robustness of quantum states in the presence of fluctuating environments in other nanoscopic complexes and devices.
机译:光谱研究光收集和随后的光合作用中的能量转换可以跟踪发生在微观水平的量子动力学。光合作用的绿色硫细菌Chlorobium tepidum的Fenna-Matthews-Olson复合物是一种有效的原型光收集天线:它以激子(集体激发)的形式存储捕获的光子能量,随后将其转化为化学能,能量接近100效率百分比。这些激子显示出复杂的松弛模式,涉及相干和不相干的路径。我们利用多维光信号的复杂手征性和基本对称性来设计超短激光脉冲的新序列,该序列可以区分激子弛豫期间的相干量子振荡和非相干能量耗散。反映了激励的相干性质的协同动力学特征被放大。可以容易地从设计的信号中提取光合作用中的量子振动程度及其时标,表明在Fenna-Matthews-Olson络合物中的能量传输过程中保持了协同性。所提出的脉冲序列还可以用于揭示在其他纳米复合物和装置中存在波动环境的情况下有关量子态的鲁棒性的信息。

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