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Delocalised kinetic Monte Carlo for simulating delocalisation-enhanced charge and exciton transport in disordered materials

机译:用于模拟划分的动力学蒙特卡罗用于模拟划分的划分型电荷和激子输送在无序材料中

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摘要

Charge transport is well understood in both highly ordered materials (band conduction) or highly disordered ones (hopping conduction). In moderately disordered materials—including many organic semiconductors—the approximations valid in either extreme break down, making it difficult to accurately model the conduction. In particular, describing wavefunction delocalisation requires a quantum treatment, which is difficult in disordered materials that lack periodicity. Here, we present the first three-dimensional model of partially delocalised charge and exciton transport in materials in the intermediate disorder regime. Our approach is based on polaron-transformed Redfield theory, but overcomes several computational roadblocks by mapping the quantum-mechanical techniques onto kinetic Monte Carlo. Our theory, delocalised kinetic Monte Carlo (dKMC), shows that the fundamental physics of transport in moderately disordered materials is that of charges hopping between partially delocalised electronic states. Our results reveal why standard kinetic Monte Carlo can dramatically underestimate mobilities even in disordered organic semiconductors, where even a little delocalisation can substantially enhance mobilities, as well as showing that three-dimensional calculations capture important delocalisation effects neglected in lower-dimensional approximations.
机译:在高度有序的材料(带传导)或高度无序的材料(跳跃传导)中,充电运输很好地理解。在适度紊乱的材料中 - 包括许多有机半导体 - 近似有效的近似下来,使得难以准确地模拟传导。特别地,描述了波力划分的删除性需要量子处理,这在缺乏周期性的无序材料中是困难的。在这里,我们介绍了中间疾病制度中材料部分截匙充电和激子输送的第一三维模型。我们的方法是基于Polaron变换的Redfield理论,但通过将量子机械技术映射到动力学蒙特卡罗来克服几种计算障碍。我们的理论,划分的动力学蒙特卡罗(DKMC)表明,中等紊乱材料的交通基本物理学是跳跃部分划分的电子国家之间的电荷。我们的结果揭示了为什么即使在无序的有机半导体中也可以显着低估的标准动力学Monte Carlo,即使在有机半导体中也可以大大提高迁移率,表明三维计算在较低尺寸近似忽略忽略忽略的逐渐删除效应。

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