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Simulation of Quantum Dynamics of Excitonic Systems at Finite Temperature: an efficient method based on Thermo Field Dynamics

机译:有限温度下激子系统的量子动力学模拟:一种基于热场动力学的有效方法

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摘要

Quantum electron-vibrational dynamics in molecular systems at finite temperature is described using an approach based on Thermo Field Dynamics theory. This formulation treats temperature effects in the Hilbert space without introducing the Liouville space. The solution of Thermo Field Dynamics equations with a novel technique for the propagation of Tensor Trains (Matrix Product States) is implemented and discussed. The methodology is applied to the study of the exciton dynamics in the Fenna-Mathews-Olsen complex using a realistic structured spectral density to model the electron-phonon interaction. The results of the simulations highlight the effect of specific vibrational modes on the exciton dynamics and energy transfer process, as well as call for careful modeling of electron-phonon couplings.
机译:使用基于热场动力学理论的方法描述了分子系统在有限温度下的量子电子振动动力学。此公式可在不引入Liouville空间的情况下处理希尔伯特空间中的温度效应。实施和讨论了用一种新颖的张量列车(矩阵乘积状态)传播技术来解决热场动力学方程。该方法应用于Fenna-Mathews-Olsen络合物中的激子动力学的研究,使用现实的结构化光谱密度对电子-声子相互作用进行建模。仿真结果突出了特定振动模式对激子动力学和能量转移过程的影响,并呼吁对电子-声子耦合进行仔细建模。

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