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Non-equilibrium relaxation of hot states in organic semiconductors: Impact of mode-selective excitation on charge transfer

机译:在有机半导体中的热状态非平衡松弛:模式选择性激励对电荷转移的影响

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摘要

The theoretical study of open quantum systems strongly coupled to a vibrational environment remains computationally challenging due to the strongly non-Markovian characteristics of the dynamics. We study this problem in the case of a molecular dimer of the organic semiconductor tetracene, the exciton states of which are strongly coupled to a few hundreds of molecular vibrations. To do so, we employ a previously developed tensor network approach, based on the formalism of matrix product states. By analyzing the entanglement structure of the system wavefunction, we can expand it in a tree tensor network state, which allows us to perform a fully quantum mechanical time evolution of the exciton-vibrational system, including the effect of 156 molecular vibrations. We simulate the dynamics of hot states, i.e., states resulting from excess energy photoexcitation, by constructing various initial bath states, and show that the exciton system indeed has a memory of those initial configurations. In particular, the specific pathway of vibrational relaxation is shown to strongly affect the quantum coherence between exciton states in time scales relevant for the ultrafast dynamics of application-relevant processes such as charge transfer. The preferential excitation of low-frequency modes leads to a limited number of relaxation pathways, thus "protecting" quantum coherence and leading to a significant increase in the charge transfer yield in the dimer structure. Published under license by AIP Publishing.
机译:由于动态的强烈非马洛维维亚特征,强烈耦合到振动环境的开放量子系统的理论研究仍然是挑战性的。我们在有机半导体四烯的分子二聚体的情况下研究该问题,其中的激子状态强烈偶联至几百个分子振动。为此,我们采用先前开发的张量网络方法,基于矩阵产品状态的形式主义。通过分析系统挥发性的缠结结构,我们可以将其扩展到树张量网络状态,这使我们能够对激子振动系统进行全量的机械时间演化,包括156个分子振动的效果。我们通过构建各种初始浴室,模拟热状态的动态,即由多余的能量可爱透明发出的状态,并表明Exciton系统确实具有这些初始配置的存储器。特别地,振动弛豫的特定途径被示出为强烈影响激子状态与适用于诸如电荷转移的超快动态的时间尺度之间的量子相干性。低频模式的优先激发导致有限数量的松弛途径,从而“保护”量子相干性并导致二聚体结构中的电荷转移产率显着增加。通过AIP发布在许可证下发布。

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