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Detailed analysis of charge transport in amorphous organic thin layer by multiscale simulation without any adjustable parameters

机译:在无任何可调参数的情况下通过多尺度模拟详细分析非晶态有机薄层中的电荷传输

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摘要

Hopping-type charge transport in an amorphous thin layer composed of organic molecules is simulated by the combined use of molecular dynamics, quantum chemical, and Monte Carlo calculations. By explicitly considering the molecular structure and the disordered intermolecular packing, we reasonably reproduce the experimental hole and electron mobilities and their applied electric field dependence (Poole–Frenkel behaviour) without using any adjustable parameters. We find that the distribution of the density-of-states originating from the amorphous nature has a significant impact on both the mobilities and Poole–Frenkel behaviour. Detailed analysis is also provided to reveal the molecular-level origin of the charge transport, including the origin of Poole–Frenkel behaviour.
机译:通过结合使用分子动力学,量子化学和蒙特卡洛计算,可以模拟由有机分子组成的非晶薄层中的跳跃型电荷传输。通过明确考虑分子结构和无序的分子间堆积,我们可以合理地重现实验的空穴和电子迁移率及其所施加的电场依赖性(Poole-Frenkel行为),而无需使用任何可调参数。我们发现,源自非晶态的状态密度分布对迁移率和普尔-弗伦克尔行为都有重大影响。还提供了详细的分析来揭示电荷传输的分子级起源,包括Poole-Frenkel行为的起源。

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