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The Symmetrical Quasi-Classical Model for Electronically Non-Adiabatic Processes Applied to Energy Transfer Dynamics in Site-Exciton Models of Light-Harvesting Complexes

机译:电子非绝热过程的对称拟经典模型应用于光采复合物的场激模型中的能量传递动力学

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In a recent series of papers, "it has been illustrated that a symmetrical quasi-classical (SQC) windowing model applied to the Meyer Miller (MM) classical vibronic Hamiltonian provides an excellent description of a variety of electronically non-adiabatic benchmark model systems for which exact quantum results are available for comparison. In this paper, the SQC/MM approach is used to treat energy transfer dynamics in site-exciton models of light-harvesting complexes, and in particular, the well-known 7-state Fenna Mathews-Olson (FMO) complex. Again, numerically "exact" results are available for comparison, here via the hierarchical equation of motion (HEOM) approach of Ishizaki and Fleming, and it is seen that the simple SQC/MM pproach provides very reasonable agreement with the "previous HEOM results. It is noted, however, that unlike most (if not all) simple approaches for treating these systems, because the SQC/MM approach presents a fully atomistic simulation based on classical trajectory simulation, it places no restrictions on the characteristics of the thermal baths coupled to each two-level site, e.g., bath spectral densities (SD) of any analytic functional form may be employed as well as discrete SD determined experimentally or from MD simulation (nor is there any restriction that the baths be harmonic), opening up the possibility of simulating more realistic variations on the basic site-exciton framework for describing the non-adiabatic dynamics of photosynthetic pigment complexes.
机译:在最近的一系列论文中,“已经说明,应用于Meyer Miller(MM)经典振动哈密顿量的对称准经典(SQC)窗口模型为以下的各种非绝热基准模型系统提供了出色的描述:在本文中,SQC / MM方法用于处理光收集复合物的现场激子模型中的能量转移动力学,尤其是著名的7态Fenna Mathews-奥尔森(FMO)复合体,同样,数值“精确”的结果可用于比较,此处通过Ishizaki和Fleming的运动分层方程(HEOM)方法进行,可以看出,简单的SQC / MM p方法可与“以前的HEOM结果。但是要注意的是,与大多数(如果不是全部)简单的方法来处理这些系统不同,因为SQC / MM方法基于经典的轨迹仿真提供了完全原子的仿真,因此对耦合的热浴槽的特性没有任何限制。对于每个两级位点,例如,可以采用任何解析功能形式的浴池频谱密度(SD)以及通过实验或通过MD模拟确定的离散SD(也没有对浴池产生谐波的任何限制),从而打开了在描述光合色素复合物非绝热动力学的基本位点-激发框架上模拟更现实的变化的可能性。

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