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Theoretical modelling of carrier transports in molecular semiconductors: molecular design of triphenylamine dimer systems

机译:分子半导体中载流子传输的理论模型:三苯胺二聚体系统的分子设计

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摘要

Charge transport in molecular systems and biosystems can be different from that in inorganic, rigid semiconductors. The electron-nuclear motion couplings play an important role in the former case. We have developed a theoretical scheme to employ the Marcus electron transfer theory coupled with a direct diabatic dimer model and the Brownian diffusion assumption to predict the carrier mobility for molecular materials. For triphenylamine, a typical molecular transport material, the design strategies regarding the formation a cyclic or a linear dimer are evaluated from theoretical calculations for the carrier mobility. We made a comparison between the mobility and the electrical polarizability. It is found that in the case of triphenylamine dimer, these two quantities have different trends. The fact that the macrocycle possesses higher mobility but lower polarizability than the linear chain is due to the difference in the reorganization energy. The theoretical predicted temperature dependences are analysed within the hopping mechanism. The calculated room-temperature mobilities are in reasonable agreement with experimental values.
机译:分子系统和生物系统中的电荷传输可能不同于无机的刚性半导体中的电荷传输。电子核运动耦合在前一种情况下起着重要作用。我们已经开发出一种理论方案,利用Marcus电子转移理论,直接非绝热二聚体模型和Brownian扩散假设来预测分子材料的载流子迁移率。对于典型的分子传输材料三苯胺,根据载流子迁移率的理论计算可评估有关形成环状或线性二聚体的设计策略。我们在迁移率和电极化率之间进行了比较。发现在三苯胺二聚体的情况下,这两个量具有不同的趋势。大环具有比线性链更高的迁移率但极化率更低的事实是由于重组能量的差异。在跳变机理内分析了理论上预测的温度依赖性。计算得出的室温迁移率与实验值合理吻合。

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