State Key Laboratory of Physical Chemistry of Solid Surfaces, iChEM, Fujian Provincial Key Laboratory of Theoretical and Computational Chemistry, and College of Chemistry and Chemical Engineering, Xiamen University, Xiamen 361005, People's Republic of China.
J Chem Theory Comput. 2023 Jul 11;19(13):3900-3914. doi: 10.1021/acs.jctc.3c00243. Epub 2023 Jun 9.
A new diabatization scheme is proposed to calculate the electronic couplings for the singlet fission process in multichromophoric systems. In this approach, a robust descriptor that treats single and multiple excitations on an equal footing is adopted to quantify the localization degree of the particle and hole densities of the electronic states. By maximally localizing the particles and holes in terms of predefined molecular fragments, quasi-diabatic states with well-defined characters (locally excited, charge transfer, correlated triplet pair, etc.) can be automatically constructed as the linear combinations of the adiabatic ones, and the electronic couplings can be directly obtained. This approach is very general in that it applies to electronic states with various spin multiplicities and can be combined with various kinds of preliminary electronic structure calculations. Due to the high numerical efficiency, it is able to manipulate more than 100 electronic states in diabatization. The applications to the tetracene dimer and trimer reveal that high-lying multiply excited charge transfer states have significant influences on both the formation and separation of the correlated triplet pair and can even enlarge the coupling for the latter process by 1 order of magnitude.
提出了一种新的双对角化方案来计算多发色团体系中单态裂变过程的电子耦合。在这种方法中,采用了一个稳健的描述符,平等地处理单激发和多激发,以量化电子态的粒子和空穴密度的局域化程度。通过根据预定义的分子片段最大程度地局域化粒子和空穴,可以自动构建具有明确定义特征(局域激发、电荷转移、相关三重态对等)的准非绝热态,作为绝热态的线性组合,并且可以直接获得电子耦合。该方法非常通用,适用于具有各种自旋多重性的电子态,并且可以与各种初步的电子结构计算相结合。由于数值效率高,它能够在双对角化中处理超过 100 个电子态。对并四苯二聚体和三聚体的应用表明,高能多激发电荷转移态对相关三重态对的形成和分离有显著影响,甚至可以使后者过程的耦合增大 1 个数量级。