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Quantum nonlocality in the excitation energy transfer in the Fenna-Matthews-Olson complex

机译:费纳-马修斯-奥尔森复合体中激发能传递中的量子非局部性

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The Fenna-Matthews-Olson (FMO) complex-a pigment protein complex involved in photosynthesis in green sulfur bacteria-is remarkably efficient in transferring excitation energy from light harvesting antenna molecules to a reaction center. Recent experimental and theoretical studies suggest that quantum coherence and entanglement may play a role in this excitation energy transfer (EET). We examine whether bipartite quantum nonlocality, a property that expresses a stronger-than-entanglement form of correlation, exists between different pairs of chromophores in the FMO complex when modeling the EET by the hierarchically coupled equations of motion method. We compare the results for nonlocality with the amount of bipartite entanglement in the system. In particular, we analyze in what way these correlation properties are affected by different initial conditions. It is found that bipartite nonlocality only exists when the initial conditions are chosen in an unphysiological manner and probably is absent when considering the EET in the FMO complex in its natural habitat. It is also seen that nonlocality and entanglement behave quite differently in this system. In particular, for localized initial states, nonlocality only exists on a very short time scale and then drops to zero in an abrupt manner. As already known from previous studies, quantum entanglement between chromophore pairs, on the other hand, is oscillating and exponentially decaying and follow thereby a pattern more similar to the chromophore population dynamics. The abrupt disappearance of nonlocality in the presence of nonvanishing entanglement is a phenomenon we call nonlocality sudden death; a striking manifestation of the difference between these two types of correlations in quantum systems.
机译:Fenna-Matthews-Olson(FMO)复合物-一种与绿色硫细菌中光合作用有关的色素蛋白复合物,在将激发能从光收集天线分子转移到反应中心方面非常有效。最近的实验和理论研究表明,量子相干和纠缠可能在这种激发能转移(EET)中起作用。当通过运动方法的层级耦合方程对EET建模时,我们检查了FMO络合物中不同生色团对之间是否存在二元量子非局域性(一种表达强于纠缠的相关性的特性)。我们将非局部性的结果与系统中两部分纠缠的数量进行比较。特别是,我们分析了这些相关属性受到不同初始条件的影响方式。发现只有在以非生理方式选择初始条件时,才存在二分异域性,而在自然栖息地的FMO复合体中考虑EET时,可能不存在二分异域性。还可以看出,在该系统中,非局部性和纠缠行为有很大不同。特别是,对于局部初始状态,非局部性仅在很短的时间范围内存在,然后突然变为零。从先前的研究中已经知道,另一方面,生色团对之间的量子纠缠正在振荡并呈指数衰减,并因此遵循与生色团种群动态更相似的模式。在不消失的纠缠中,非本地性突然消失是我们称为非本地性突然死亡的现象。量子系统中这两种相关类型之间差异的明显体现。

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