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高效准确地模拟二维电子光子回波信号:芬纳-马修斯-奥尔森复合物简单模型的说明。

Efficient and accurate simulations of two-dimensional electronic photon-echo signals: Illustration for a simple model of the Fenna-Matthews-Olson complex.

机构信息

Department of Chemistry, Technische Universität München, D-85747 Garching, Germany.

出版信息

J Chem Phys. 2010 Jan 7;132(1):014501. doi: 10.1063/1.3268705.

DOI:10.1063/1.3268705
PMID:20078166
Abstract

Two-dimensional (2D) photon-echo spectra of a single subunit of the Fenna-Matthews-Olson (FMO) bacteriochlorophyll trimer of Chlorobium tepidum are simulated, employing the equation-of-motion phase-matching approach (EOM-PMA). We consider a slightly extended version of the previously proposed Frenkel exciton model, which explicitly accounts for exciton coherences in the secular approximation. The study is motivated by a recent experiment reporting long-lived coherent oscillations in 2D transients [Engel et al., Nature 446, 782 (2007)] and aims primarily at accurate simulations of the spectroscopic signals, with the focus on oscillations of 2D peak intensities with population time. The EOM-PMA accurately accounts for finite pulse durations as well as pulse-overlap effects and does not invoke approximations apart from the weak-field limit for a given material system. The population relaxation parameters of the exciton model are taken from the literature. The effects of various dephasing mechanisms on coherence lifetimes are thoroughly studied. It is found that the experimentally detected multiple frequencies in peak oscillations cannot be reproduced by the employed FMO model, which calls for the development of a more sophisticated exciton model of the FMO complex.

摘要

二维(2D)光子回波光谱的单个亚基 Fenna-Matthews-Olson(FMO)细菌叶绿素三聚体的绿菌属 tepidum 进行模拟,采用运动方程相位匹配方法(EOM-PMA)。我们考虑了以前提出的 Frenkel 激子模型的略微扩展版本,该模型在瞬态近似中明确考虑了激子相干性。这项研究的动机是最近的一项实验报告了二维瞬态中长时间相干振荡[Engel 等人,自然 446,782(2007)],主要目的是准确模拟光谱信号,重点是二维峰强度与种群时间的振荡。EOM-PMA 准确地考虑了有限的脉冲持续时间和脉冲重叠效应,并且除了给定材料系统的弱场极限之外,不采用任何近似。激子模型的种群弛豫参数取自文献。彻底研究了各种退相机制对相干寿命的影响。结果发现,实验中检测到的峰振荡中的多个频率不能用所采用的 FMO 模型再现,这需要开发更复杂的 FMO 复合物激子模型。

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