Troisi Alessandro, Orlandi Giorgio
Department of Chemistry, University of Warwick, CV4 7AL Coventry, United Kingdom.
Phys Rev Lett. 2006 Mar 3;96(8):086601. doi: 10.1103/PhysRevLett.96.086601.
We propose that the electron transport in crystalline organic semiconductors at room temperature (RT) is neither polaronic nor a combination of thermally activated hopping and polaronic transport, as previously thought. Thermal molecular motions cause large fluctuations in the intermolecular transfer integrals that, in turn, localize the charge carrier. This effect destroys the translational symmetry of the electronic Hamiltonian and makes the band description inadequate for RT organic crystals. We used a one-dimensional semiclassical model to compute the (temperature dependent) charge carrier mobility in the presence of thermal fluctuations of the electronic Hamiltonian. This transport mechanism explains several contrasting experimental observations pointing sometimes to a delocalized "bandlike" transport and sometimes to the existence of strongly localized charge carriers.
我们提出,室温(RT)下晶体有机半导体中的电子传输既不是极化子型的,也不是如先前所想的那样是热激活跳跃和极化子传输的组合。热分子运动会导致分子间转移积分出现大幅波动,进而使电荷载流子局域化。这种效应破坏了电子哈密顿量的平移对称性,使得能带描述不适用于室温下的有机晶体。我们使用一维半经典模型来计算在电子哈密顿量热涨落存在的情况下(与温度相关的)电荷载流子迁移率。这种传输机制解释了一些相互矛盾的实验观测结果,这些结果有时指向离域的“带状”传输,有时又指向强局域化电荷载流子的存在。