Grotjahn Robin, Kaupp Martin
Technische Universität Berlin, Institut für Chemie, Theoretische Chemie/Quantenchemie, Sekr. C7, Straße des 17. Juni 135, 10623 Berlin, Germany.
J Chem Phys. 2021 Sep 28;155(12):124108. doi: 10.1063/5.0063751.
The performance of various hybrid density functionals is assessed for 105 singlet and 105 corresponding triplet vertical excitation energies from the QUEST database. The overall lowest mean absolute error is obtained with the local hybrid (LH) functional LH12ct-SsirPW92 with individual errors of 0.11 eV (0.11 eV) for singlet (triplet) n → π* excitations and 0.29 eV (0.17 eV) for π → π* excitations. This is slightly better than with the overall best performing global hybrid M06-2X [n → π*: 0.13 eV (0.17 eV), π → π*: 0.30 eV (0.20 eV)], while most other global and range-separated hybrids and some LHs suffer from the "triplet problem" of time-dependent density functional theory. This is exemplified by correlating the errors for singlet and triplet excitations on a state-by-state basis. The excellent performance of LHs based on a common local mixing function, i.e., an LMF constructed from the spin-summed rather than the spin-resolved semilocal quantities, is systematically investigated by the introduction of a spin-channel interpolation scheme that allows us to continuously modulate the fraction of opposite-spin terms used in the LMF. The correlation of triplet and singlet errors is systematically improved for the n → π* excitations when larger fractions of the opposite-spin-channel are used in the LMF, whereas this effect is limited for the π → π* excitations. This strongly supports a previously made hypothesis that attributes the excellent performance of LHs based on a common LMF to cross-spin-channel nondynamical correlation terms.
针对QUEST数据库中的105个单重态和105个相应的三重态垂直激发能,评估了各种杂化密度泛函的性能。使用局部杂化(LH)泛函LH12ct - SsirPW92获得了总体最低平均绝对误差,单重态(三重态)n→π激发的个体误差为0.11 eV(0.11 eV),π→π激发的个体误差为0.29 eV(0.17 eV)。这略优于总体表现最佳的全局杂化泛函M06 - 2X [n→π*:0.13 eV(0.17 eV),π→π*:0.30 eV(0.20 eV)],而大多数其他全局和范围分离的杂化泛函以及一些LH泛函都存在含时密度泛函理论的“三重态问题”。通过逐态关联单重态和三重态激发的误差来举例说明这一点。通过引入自旋通道插值方案,系统地研究了基于常见局部混合函数(即由自旋求和而非自旋分辨的半局部量构建的LMF)的LH泛函的优异性能,该方案使我们能够连续调节LMF中使用的反自旋项的比例。当在LMF中使用更大比例的反自旋通道时,n→π激发下三重态和单重态误差的相关性得到系统改善,而对于π→π激发,这种效果有限。这有力地支持了之前提出的一个假设,即基于常见LMF的LH泛函的优异性能归因于跨自旋通道非动态相关项。