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The Effects of Different Electron-Phonon Couplings on the Spectral and Transport Properties of Small Molecule Single-Crystal Organic Semiconductors

机译:不同电子 - 声子偶合对小分子单晶有机半导体光谱和输运性质的影响

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摘要

Spectral and transport properties of small molecule single-crystal organic semiconductors have been theoretically analyzed focusing on oligoacenes, in particular on the series from naphthalene to rubrene and pentacene, aiming to show that the inclusion of different electron-phonon couplings is of paramount importance to interpret accurately the properties of prototype organic semiconductors. While in the case of rubrene, the coupling between charge carriers and low frequency inter-molecular modes is sufficient for a satisfactory description of spectral and transport properties, the inclusion of electron coupling to both low-frequency inter-molecular and high-frequency intra-molecular vibrational modes is needed to account for the temperature dependence of transport properties in smaller oligoacenes. For rubrene, a very accurate analysis in the relevant experimental configuration has allowed for the clarification of the origin of the temperature-dependent mobility observed in these organic semiconductors. With increasing temperature, the chemical potential moves into the tail of the density of states corresponding to localized states, but this is not enough to drive the system into an insulating state. The mobility along different crystallographic directions has been calculated, including vertex corrections that give rise to a transport lifetime one order of magnitude smaller than the spectral lifetime of the states involved in the transport mechanism. The mobility always exhibits a power-law behavior as a function of temperature, in agreement with experiments in rubrene. In systems gated with polarizable dielectrics, the electron coupling to interface vibrational modes of the gate has to be included in addition to the intrinsic electron-phonon interaction. While the intrinsic bulk electron-phonon interaction affects the behavior of mobility in the coherent regime below room temperature, the coupling with interface modes is dominant for the activated high temperature contribution of localized polarons. Finally, the effects of a weak disorder largely increase the activation energies of mobility and induce the small polaron formation at lower values of electron-phonon couplings in the experimentally relevant temperature window.
机译:从理论上对小分子单晶有机半导体的光谱和传输特性进行了分析,重点研究了低聚并苯,特别是萘,红荧烯和并五苯的系列,旨在表明包含不同的电子-声子耦合对解释至关重要。准确地描述了原型有机半导体的特性。在红荧烯的情况下,电荷载流子与低频分子间模式之间的耦合足以令人满意地描述光谱和传输性质,包括将电子耦合到低频分子间和高频分子内。需要分子振动模式来解释较小的低聚苯乙炔中传输性质的温度依赖性。对于红荧烯,在相关的实验配置中进行了非常准确的分析,从而可以澄清在这些有机半导体中观察到的温度依赖性迁移率的起源。随着温度的升高,化学势移动到与局部状态相对应的状态密度的尾部,但这不足以使系统进入绝缘状态。已计算出沿不同晶体学方向的迁移率,包括顶点修正,这些修正使传输寿命比传输机制所涉及的态的光谱寿命小一个数量级。与在红荧烯中的实验一致,迁移率总是表现出随温度变化的幂律行为。在用可极化电介质选通的系统中,除了固有的电子-声子相互作用之外,还必须包括耦合到栅极的界面振动模式的电子。虽然固有的本体电子-声子相互作用会影响室温以下相干态下的迁移率行为,但与界面模式的耦合对于局部极化子的激活高温贡献起主导作用。最后,弱无序的影响在很大程度上增加了迁移率的活化能,并在实验相关的温度窗口中以较低的电子-声子耦合值诱导了小的极化子形成。

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