Multiscale Modeling of Charge Transfer Processes in Organic Semiconductors

Shiwei Yin
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Abstract

The relationship between molecular structure and macroscopic charge mobility plays an important role in the design of organic semiconductors. In this respect, the molecular packing is the starting point that governs the electron coupling, energetic landscapes, and electron polarization (EP) energies of the charge carriers. The molecular packing is strongly dependent on the intermolecular interaction potentials. During charge transfer (CT) processes, the intermolecular potentials are related to electron state changes in which the charged molecule moves from one site to another site. Thus, traditional force fields cannot express these electron processes. To this end, state-specific polarizable force fields (SS-PFFs) derived from quantum mechanics were developed to describe the intermolecular interactions between the neutral molecules and charged molecules. The influence of the condensed phase on the EP energies and reorganization energies of CT reactions in organic solids can be explicitly discussed using SS-PFFs. The molecular descriptors of the electrostatic potentials are used to relate the condensed-phase effects and molecular structure. In this way, we can obtain a basic physical picture to guide the design of organic semiconducting molecular materials.
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有机半导体中电荷转移过程的多尺度建模
分子结构与宏观电荷迁移率的关系在有机半导体的设计中起着重要的作用。在这方面,分子堆积是控制电子耦合、能量景观和电荷载流子的电子极化(EP)能量的起点。分子的堆积与分子间的相互作用势密切相关。在电荷转移(CT)过程中,分子间电位与带电分子从一个位置移动到另一个位置的电子状态变化有关。因此,传统的力场无法表达这些电子过程。为此,从量子力学中衍生出特定态极化力场(ss - pff)来描述中性分子和带电分子之间的分子间相互作用。用ss - pff可以明确地讨论凝聚相对有机固体中CT反应的EP能和重组能的影响。静电势的分子描述符用于将凝聚相效应与分子结构联系起来。通过这种方式,我们可以获得一个基本的物理图像来指导有机半导体分子材料的设计。
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