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迭代线性化密度矩阵传播在光合作用光捕获中相干激发能量转移建模中的应用。

Iterative linearized density matrix propagation for modeling coherent excitation energy transfer in photosynthetic light harvesting.

机构信息

Department of Chemistry, Boston University, 590 Commonwealth Avenue, Boston, Massachusetts 02215, USA.

出版信息

J Chem Phys. 2010 Nov 14;133(18):184108. doi: 10.1063/1.3498901.

Abstract

Rather than incoherent hopping between chromophores, experimental evidence suggests that the excitation energy transfer in some biological light harvesting systems initially occurs coherently, and involves coherent superposition states in which excitation spreads over multiple chromophores separated by several nanometers. Treating such delocalized coherent superposition states in the presence of decoherence and dissipation arising from coupling to an environment is a significant challenge for conventional theoretical tools that either use a perturbative approach or make the Markovian approximation. In this paper, we extend the recently developed iterative linearized density matrix (ILDM) propagation scheme [E. R. Dunkel et al., J. Chem. Phys. 129, 114106 (2008)] to study coherent excitation energy transfer in a model of the Fenna-Matthews-Olsen light harvesting complex from green sulfur bacteria. This approach is nonperturbative and uses a discrete path integral description employing a short time approximation to the density matrix propagator that accounts for interference between forward and backward paths of the quantum excitonic system while linearizing the phase in the difference between the forward and backward paths of the environmental degrees of freedom resulting in a classical-like treatment of these variables. The approach avoids making the Markovian approximation and we demonstrate that it successfully describes the coherent beating of the site populations on different chromophores and gives good agreement with other methods that have been developed recently for going beyond the usual approximations, thus providing a new reliable theoretical tool to study coherent exciton transfer in light harvesting systems. We conclude with a discussion of decoherence in independent bilinearly coupled harmonic chromophore baths. The ILDM propagation approach in principle can be applied to more general descriptions of the environment.

摘要

与色素之间无规跃迁不同,实验证据表明,在一些生物光捕获系统中,激发能量转移最初是相干的,并涉及相干叠加态,其中激发在相隔几个纳米的多个色素之间传播。在存在来自与环境耦合的退相干和耗散的情况下,处理这种非定域相干叠加态是对传统理论工具的一个重大挑战,这些工具要么使用微扰方法,要么进行马尔可夫近似。在本文中,我们将最近开发的迭代线性化密度矩阵(ILDM)传播方案[E.R.Dunkel 等人,J.Chem.Phys.129,114106(2008)]扩展到研究来自绿硫细菌的 Fenna-Matthews-Olsen 光捕获复合物模型中的相干激发能量转移。这种方法是非微扰的,使用离散路径积分描述,采用密度矩阵传播子的短时间近似,该近似考虑了量子激子系统中前向和后向路径之间的干涉,同时线性化环境自由度的前向和后向路径之间的相位差,从而对这些变量进行类似经典的处理。该方法避免了马尔可夫近似,我们证明它成功地描述了不同色素上的局域种群的相干拍频,并与最近开发的用于超越通常近似的其他方法很好地吻合,从而为研究光捕获系统中的相干激子转移提供了一种新的可靠理论工具。最后我们讨论了独立双线性耦合谐波色素浴中的退相干。ILDM 传播方法原则上可以应用于更一般的环境描述。

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