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通过结合分子动力学模拟和量子化学计算来探索促使 ITIC 在有机太阳能电池中成为优异受体的因素。

Exploring what prompts ITIC to become a superior acceptor in organic solar cell by combining molecular dynamics simulation with quantum chemistry calculation.

作者信息

Pan Qing-Qing, Li Shuang-Bao, Duan Ying-Chen, Wu Yong, Zhang Ji, Geng Yun, Zhao Liang, Su Zhong-Min

机构信息

Institute of Functional Material Chemistry, Faculty of Chemistry, Northeast Normal University, Chang Chun 130024, Jilin, P. R. China.

出版信息

Phys Chem Chem Phys. 2017 Nov 29;19(46):31227-31235. doi: 10.1039/c7cp05938h.

Abstract

The interface characteristic is a crucial factor determining the power conversion efficiency of organic solar cells (OSCs). In this work, our aim is to conduct a comparative study on the interface characteristics between the very famous non-fullerene acceptor, ITIC, and a fullerene acceptor, PC71BM by combining molecular dynamics simulations with density functional theory. Based on some typical interface models of the acceptor ITIC or PC71BM and the donor PBDB-T selected from MD simulation, besides the evaluation of charge separation/recombination rates, the relative positions of Frenkel exciton (FE) states and the charge transfer states along with their oscillator strengths are also employed to estimate the charge separation abilities. The results show that, when compared with those for the PBDB-T/PC71BM interface, the CT states are more easily formed for the PBDB-T/ITIC interface by either the electron transfer from the FE state or direct excitation, indicating the better charge separation ability of the former. Moreover, the estimation of the charge separation efficiency manifests that although these two types of interfaces have similar charge recombination rates, the PBDB-T/ITIC interface possesses the larger charge separation rates than those of the PBDB-T/PC71BM interface. Therefore, the better match between PBDB-T and ITIC together with a larger charge separation efficiency at the interface are considered to be the reasons for the prominent performance of ITIC in OSCs.

摘要

界面特性是决定有机太阳能电池(OSC)功率转换效率的关键因素。在本工作中,我们的目标是通过结合分子动力学模拟和密度泛函理论,对非常著名的非富勒烯受体ITIC与富勒烯受体PC71BM之间的界面特性进行比较研究。基于从分子动力学模拟中选取的受体ITIC或PC71BM与供体PBDB-T的一些典型界面模型,除了评估电荷分离/复合速率外,还利用弗伦克尔激子(FE)态和电荷转移态的相对位置及其振子强度来估计电荷分离能力。结果表明,与PBDB-T/PC71BM界面相比,PBDB-T/ITIC界面通过FE态的电子转移或直接激发更容易形成电荷转移(CT)态,这表明前者具有更好的电荷分离能力。此外,电荷分离效率的估计表明,尽管这两种类型的界面具有相似的电荷复合速率,但PBDB-T/ITIC界面的电荷分离速率比PBDB-T/PC71BM界面的电荷分离速率大。因此,PBDB-T与ITIC之间更好的匹配以及界面处更大的电荷分离效率被认为是ITIC在有机太阳能电池中表现突出的原因。

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