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Development of a TDDFT-Based Protocol with Local Hybrid Functionals for the Screening of Potential Singlet Fission Chromophores

机译:基于TDDFT的协议与局部混合功能的开发,用于筛选潜在单次裂变发色团

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Chromophores suitable for singlet fission need to meet specific requirements regarding the relative energies of their S-0 S-1, and T-1 (and T-2) electronic states. Accurate quantum chemical computations of the corresponding energy differences are thus highly desirable for materials design. Methods based on density functional theory (DFT) have the advantage of being applicable to larger, often more relevant systems compared to more sophisticated post-Hartree-Fock methods. However, most exchange correlation functionals do not provide the needed accuracy, in particular, due to an insufficient description of the T-1 state. Here we use a recent singlet fission chromophore test set (Wen, J.; Havlas, Z.; Michl, J. J. Am. Chem. Soc. 2015, 137, 165-172) to evaluate a wide range of DFT-based methods, with an emphasis on local hybrid functionals with a position-dependent exact-exchange admixture. New reference vertical CC2/CBS benchmark excitation energies for the test set have been generated, which exhibit somewhat more uniform accuracy than the previous CASPT2-based data. These CC2 reference data have been used to evaluate a wide range of functionals, comparing full linear-response TDDFT, the Tamm-Dancoff approximation (TDA), and Delta SCF calculations. Two simple two-parameter local hybrid functionals and the more empirical M06-2X global meta-GGA hybrid provide the overall best accuracy. Due to its lower empiricism and wide applicability, the Lh12ct-SsifPW92 local hybrid is suggested as the main ingredient of an efficient computational protocol for prediction of the relevant excitation energies in singlet fission chromophores. Full TDDFT for the S-1, S-2, and T-2 excitations is combined with Delta SCF for the T-1 excitations. Making use also of some error compensation with suitable DFT-optimized structures, even the most critical T-1 excitations can be brought close to the target accuracy of 0.20 eV, while the other excitation energies are obtained even more accurately. This fully DFT-based protocol should become a useful tool in the field of singlet fission.
机译:适用于单线裂变的发色团需要满足关于其S-0 S-1的相对能量的特定要求,以及T-1(和T-2)电子状态。因此,对材料设计非常理想的能量差的精确量子化学计算。基于密度泛函理论(DFT)的方法具有适用于更大,通常更相关的系统的优点,而与更复杂的Hartree-Fock方法相比。然而,由于T-1状态的描述不足,大多数交换相关函数不提供所需的精度。在这里,我们使用最近的单线裂变发色团试验集(Wen,J.; Havlas,Z .; Michl,JJ AM。Chem。Soc。2015,137,165-172)评估各种基于DFT的方法,有强调局部杂交功能,具有位置依赖性准确交换掺合物。已经生成了用于测试集的新参考垂直CC2 / CBS基准激励能量,其比以前的基于CASPT2的数据呈现出一些更均匀的精度。这些CC2参考数据已被用于评估广泛的功能,比较完整的线性响应TDDFT,TAMM-DANCOFF近似(TDA)和DELTA SCF计算。两个简单的双参数局部混合功能和更经验的M06-2X全局元GGA混合动力提供了总体最佳精度。由于其较低的经验主义和广泛的适用性,LH12CT-SSIFPW92局部杂交局部是一种有效计算协议的主要成分,用于预测单次裂变发色团中的相关励磁能量。对于S-1,S-2和T-2激发的完整TDDFT与T-1激励的Delta SCF相结合。使用适当的DFT优化结构也使用一些误差补偿,即使是最关键的T-1激励也可以接近0.20eV的目标精度,而其他励磁能量也更加准确地获得。基于DFT的协议应该成为单线裂变领域的有用工具。

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