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用于π共轭有机分子间电子转移的电子耦合的超快估算。II.

Ultrafast estimation of electronic couplings for electron transfer between pi-conjugated organic molecules. II.

作者信息

Ziogos Orestis George, Blumberger Jochen

机构信息

Department of Physics and Astronomy and Thomas Young Centre, University College London, Gower Street, London WC1E 6BT, United Kingdom.

出版信息

J Chem Phys. 2021 Dec 28;155(24):244110. doi: 10.1063/5.0076555.

Abstract

The development of highly efficient methods for the calculation of electronic coupling matrix elements between the electron donor and acceptor is an important goal in theoretical organic semiconductor research. In Paper I [F. Gajdos, S. Valner, F. Hoffmann, J. Spencer, M. Breuer, A. Kubas, M. Dupuis, and J. Blumberger, J. Chem. Theory Comput. 10, 4653 (2014)], we introduced the analytic overlap method (AOM) for this purpose, which is an ultrafast electronic coupling estimator parameterized to and orders of magnitude faster than density functional theory (DFT) calculations at a reasonably small loss in accuracy. In this work, we reparameterize and extend the AOM to molecules containing nitrogen, oxygen, fluorine, and sulfur heteroatoms using 921 dimer configurations from the recently introduced HAB79 dataset. We find again a very good linear correlation between the frontier orbital overlap, calculated ultrafast in an optimized minimum Slater basis, and DFT reference electronic couplings. The new parameterization scheme is shown to be transferable to sulfur-containing polyaromatic hydrocarbons in experimentally resolved dimeric configurations. Our extension of the AOM enables high-throughput screening of very large databases of chemically diverse organic crystal structures and the application of computationally intense non-adiabatic molecular dynamics methods to charge transport in state-of-the-art organic semiconductors, e.g., non-fullerene acceptors.

摘要

开发用于计算电子供体和受体之间电子耦合矩阵元的高效方法是理论有机半导体研究中的一个重要目标。在论文I [F. Gajdos, S. Valner, F. Hoffmann, J. Spencer, M. Breuer, A. Kubas, M. Dupuis, and J. Blumberger, J. Chem. Theory Comput. 10, 4653 (2014)] 中,我们为此引入了解析重叠方法(AOM),它是一种超快电子耦合估计器,在精度损失合理较小的情况下,参数化后比密度泛函理论(DFT)计算快几个数量级。在这项工作中,我们使用最近引入的HAB79数据集中的921个二聚体构型,对含氮、氧、氟和硫杂原子的分子重新进行参数化并扩展了AOM。我们再次发现,在优化的最小斯莱特基中超快计算得到的前沿轨道重叠与DFT参考电子耦合之间存在非常好的线性相关性。新的参数化方案被证明可转移到实验解析的二聚体构型中的含硫多环芳烃。我们对AOM的扩展使得能够对化学性质多样的有机晶体结构的非常大的数据库进行高通量筛选,并将计算强度大的非绝热分子动力学方法应用于最先进的有机半导体(如非富勒烯受体)中的电荷传输。

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