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通过多尺度模拟从电荷输运参数到有机半导体中的电荷迁移率。

From charge transport parameters to charge mobility in organic semiconductors through multiscale simulation.

机构信息

Key Laboratory of Organic OptoElectronics and Molecular Engineering, Department of Chemistry, Tsinghua University, 100084 Beijing, China.

出版信息

Chem Soc Rev. 2014 Apr 21;43(8):2662-79. doi: 10.1039/c3cs60319a. Epub 2014 Jan 6.

Abstract

This review introduces the development and application of a multiscale approach to assess the charge mobility for organic semiconductors, which combines quantum chemistry, Kinetic Monte Carlo (KMC), and molecular dynamics (MD) simulations. This approach is especially applicable in describing a large class of organic semiconductors with intermolecular electronic coupling (V) much less than intramolecular charge reorganization energy (λ), a situation where the band description fails obviously. The charge transport is modeled as successive charge hopping from one molecule to another. We highlight the quantum nuclear tunneling effect in the charge transfer, beyond the semiclassical Marcus theory. Such an effect is essential for interpreting the "paradoxical" experimental finding that optical measurement indicated "local charge" while electrical measurement indicated "bandlike". Coupled MD and KMC simulations demonstrated that the dynamic disorder caused by intermolecular vibration has negligible effect on the carrier mobility. We further apply the approach for molecular design of n-type materials and for rationalization of experimental results. The charge reorganization energy is analyzed through decomposition into internal coordinates relaxation, so that chemical structure contributions to the intramolecular electron-phonon interaction are revealed and give helpful indication to reduce the charge reorganization energy.

摘要

这篇综述介绍了一种用于评估有机半导体电荷迁移率的多尺度方法的发展和应用,该方法结合了量子化学、动力学蒙特卡罗(KMC)和分子动力学(MD)模拟。这种方法特别适用于描述一类具有分子间电子耦合(V)远小于分子内电荷重组能(λ)的有机半导体,在这种情况下,能带描述明显失效。电荷输运被建模为连续的电荷从一个分子到另一个分子的跳跃。我们强调了电荷转移中的量子核隧穿效应,超越了半经典的马库斯理论。这种效应对于解释“矛盾”的实验发现是至关重要的,即光学测量表明“局部电荷”,而电学测量表明“能带”。耦合的 MD 和 KMC 模拟表明,分子间振动引起的动态无序对载流子迁移率的影响可以忽略不计。我们进一步将该方法应用于 n 型材料的分子设计和实验结果的合理化。通过分解为内部坐标弛豫来分析电荷重组能,从而揭示了化学结构对分子内电子-声子相互作用的贡献,并为降低电荷重组能提供了有益的指示。

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