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偏置激子链中的非单调能量收集效率

Nonmonotonic energy harvesting efficiency in biased exciton chains.

作者信息

Vlaming S M, Malyshev V A, Knoester J

机构信息

Centre for Theoretical Physics and Zernike Institute for Advanced Materials, University of Groningen, Nijenborgh 4, 9747 AG Groningen, The Netherlands.

出版信息

J Chem Phys. 2007 Oct 21;127(15):154719. doi: 10.1063/1.2784556.

Abstract

We theoretically study the efficiency of energy harvesting in linear exciton chains with an energy bias, where the initial excitation is taking place at the high-energy end of the chain and the energy is harvested (trapped) at the other end. The efficiency is characterized by means of the average time for the exciton to be trapped after the initial excitation. The exciton transport is treated as the intraband energy relaxation over the states obtained by numerically diagonalizing the Frenkel Hamiltonian that corresponds to the biased chain. The relevant intraband scattering rates are obtained from a linear exciton-phonon interaction. Numerical solution of the Pauli master equation that describes the relaxation and trapping processes reveals a complicated interplay of factors that determine the overall harvesting efficiency. Specifically, if the trapping step is slower than or comparable to the intraband relaxation, this efficiency shows a nonmonotonic dependence on the bias: it first increases when introducing a bias, reaches a maximum at an optimal bias value, and then decreases again because of dynamic (Bloch) localization of the exciton states. Effects of on-site (diagonal) disorder, leading to Anderson localization, are addressed as well.

摘要

我们从理论上研究了具有能量偏置的线性激子链中的能量收集效率,其中初始激发发生在链的高能端,而能量在另一端被收集(捕获)。效率通过激子在初始激发后被捕获的平均时间来表征。激子输运被视为通过对与偏置链对应的弗伦克尔哈密顿量进行数值对角化得到的态上的带内能量弛豫。相关的带内散射率由线性激子 - 声子相互作用得到。描述弛豫和捕获过程的泡利主方程的数值解揭示了决定整体收集效率的因素之间复杂的相互作用。具体而言,如果捕获步骤比带内弛豫慢或与之相当,这种效率对偏置呈现非单调依赖性:引入偏置时它首先增加,在最佳偏置值处达到最大值,然后由于激子态的动态(布洛赫)局域化而再次降低。还讨论了导致安德森局域化的在位(对角)无序的影响。

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