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Exciton transport in the PE545 complex: insight from atomistic QM/MM-based quantum master equations and elastic network models

机译:PE545复合体中的激子传输:基于原子QM / MM的量子级方程和弹性网络模型的洞察力

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In this paper, we work out a parameterization of environmental noise within the Haken-Strobl-Reinenker (HSR) model for the PE545 light-harvesting complex, based on atomic-level quantum mechanics/molecular mechanics (QM/MM) simulations. We use this approach to investigate the role of various auto-and cross-correlations in the HSR noise tensor, confirming that site-energy autocorrelations (pure dephasing) terms dominate the noise-induced exciton mobility enhancement, followed by site energy-coupling cross-correlations for specific triplets of pigments. Interestingly, several cross-correlations of the latter kind, together with coupling-coupling cross-correlations, display clear low-frequency signatures in their spectral densities in the 30-70 cm(-1) region. These slow components lie at the limits of validity of the HSR approach, which requires that environmental fluctuations be faster than typical exciton transfer time scales. We show that a simple coarse-grained elastic-network-model (ENM) analysis of the PE545 protein naturally spotlights collective normal modes in this frequency range that represent specific concerted motions of the subnetwork of cysteines covalenty linked to the pigments. This analysis strongly suggests that protein scaffolds in light-harvesting complexes are able to express specific collective, low-frequency normal modes providing a fold-rooted blueprint of exciton transport pathways. We speculate that ENM-based mixed quantum classical methods, such as Ehrenfest dynamics, might be promising tools to disentangle the fundamental designing principles of these dynamical processes in natural and artificial light-harvesting structures.
机译:在本文中,我们基于原子水平量子力学/分子力学(QM / MM)模拟,在Haken-Strobl-Reinenker(HSR)模型中的环境噪声的参数化。我们使用这种方法来研究HSR噪声张量中各种自动和互相关的作用,确认现场 - 能量自相关(纯粹的去除)术语主导噪声引起的激发器移动性增强,其次是网站能量耦合交叉 - 颜料特异性三胞胎的相关性。有趣的是,后一种类型的几个互相关与耦合耦合互相关,在30-70cm(-1)区域中的光谱密度下显示出明显的低频签名。这些缓慢的组件位于HSR方法的有效性范围内,这要求环境波动比典型的激子转移时间尺度更快。我们表明,PE545蛋白的简单粗粒菌群体(ENM)分析自然分散在该频率范围内的集体正常模式,其代表半胱氨酸子网的特异性齐齐的动作,其与颜料相连。该分析强烈建议光收获配合物中的蛋白质支架能够表达特定的集体,低频正常模式,提供激子传输途径的折叠根蓝图。我们推测了基于enm的混合量子古典方法,例如Ehferest Dynamics,可能是解除天然和人造光收集结构中这些动态过程的基本设计原则的有希望的工具。

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