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有机太阳能电池中的电荷转移电子态:一项含时密度泛函理论研究。

Charge-transfer electronic states in organic solar cells: a TDDFT study.

作者信息

Marmolejo-Valencia Andres F, Mata-Pinzón Zaahel, Amador-Bedolla Carlos

机构信息

Facultad de Química, Universidad Nacional Autónoma de México, Av. Universidad 3000, Coyoacán, CDMX 04510, Mexico.

出版信息

Phys Chem Chem Phys. 2021 Aug 12;23(31):16806-16815. doi: 10.1039/d1cp00723h.

Abstract

The prediction of new organic photovoltaic materials in organic solar cells (OSCs) must include a precise description of charge-transfer states because they are involved in electron-transfer processes such as charge separation and charge recombination which govern the device efficiency. Also, as the experimental performance of an optoelectronic device is measured for nonequilibrium nanostructures, computational approaches need models that can incorporate morphology effects. Usually, this aspect is treated by molecular dynamics simulation (MDS) methodologies; however, methodologies and formalisms to calculate the electron-transfer processes are still controversial and sometimes do not connect their information with the phase morphologies. In this work we propose a simple and fast characterization of electron-transfer processes to find the rate constants by analysing the distribution of vertical excitation energies of both local excitation (LE) and charge-transfer (CT) states using TD-DFT calculations in the donor-acceptor pair structures which were extracted from MDS. This proposal assumes that conformational changes are prevented and equilibria are not achieved while the electron-transfer events take effect, and thus the only pathway that connects the LE and CT states is their surface crossing point where an ideal distribution might exist. Different density functionals and dialectric models were tested. The results indicate a close relationship between the proposal and experimental data for electron-transfer events, suggesting the application of this method in the rational design of new photovoltaic materials.

摘要

有机太阳能电池(OSC)中新有机光伏材料的预测必须包括对电荷转移态的精确描述,因为它们参与了诸如电荷分离和电荷复合等电子转移过程,而这些过程决定了器件效率。此外,由于光电器件的实验性能是针对非平衡纳米结构进行测量的,计算方法需要能够纳入形态学效应的模型。通常,这一方面是通过分子动力学模拟(MDS)方法来处理的;然而,计算电子转移过程的方法和形式仍然存在争议,有时也无法将它们的信息与相形态联系起来。在这项工作中,我们提出了一种简单快速的电子转移过程表征方法,通过使用TD-DFT计算分析从MDS中提取的供体-受体对结构中局域激发(LE)和电荷转移(CT)态的垂直激发能分布来找到速率常数。该提议假设在电子转移事件发生时,构象变化受到阻止且未达到平衡,因此连接LE和CT态的唯一途径是它们的表面交叉点,在该点可能存在理想分布。测试了不同的密度泛函和介电模型。结果表明该提议与电子转移事件的实验数据之间存在密切关系,这表明该方法在新型光伏材料的合理设计中的应用前景。

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