Departamento de Física y Química Teórica, Facultad de Química, Universidad Nacional Autónoma de México, México CityC.P. 04510, México.
Kimika Fakultatea, Euskal Herriko Unibertsitatea (UPV/EHU), P.K. 1072, 20080Donostia, Euskadi, Spain.
J Chem Theory Comput. 2023 Jan 10;19(1):211-220. doi: 10.1021/acs.jctc.2c01093. Epub 2022 Dec 29.
The relative stability of the singlet, triplet, and quintet spin states of iron(II) porphyrin (FeP) represents a challenging problem for electronic structure methods. While it is currently accepted that the ground state is a triplet, multiconfigurational wave function-based methods predict a quintet, and density functional approximations vary between triplet and quintet states, leading to a prediction that highly depends on the features of the method employed. The recently proposed Global Natural Orbital Functional (GNOF) aims to provide a balanced treatment between static and dynamic correlation, and together with the previous Piris Natural Orbital Functionals (PNOFs), allowed us to explore the importance of each type of correlation in the stability order of the states of FeP with a method that conserves the spin of the system. It is noteworthy that GNOF correlates all electrons in all available orbitals for a given basis set; in the case of the FeP with a double-ζ basis set as used in this work, this means that GNOF can properly correlate 186 electrons in 465 orbitals, significantly increasing the sizes of systems amenable to multiconfigurational treatment. Results show that PNOF5, PNOF7s, and PNOF7 predict the quintet to have a lower energy than the triplet state; however, the addition of dynamic correlation via second-order Møller-Plesset corrections (NOF-MP2) turns the triplet state to be lower than the quintet state, a prediction also reproduced by GNOF that incorporates much more dynamic correlation than its predecessors.
铁(II)卟啉(FeP)的单线态、三线态和五重态自旋态的相对稳定性是电子结构方法面临的一个挑战。目前普遍认为基态是三线态,但基于多组态波函数的方法预测为五重态,密度泛函近似在三线态和五重态之间变化,导致预测结果高度依赖于所采用方法的特点。最近提出的全局自然轨道泛函(GNOF)旨在在静态和动态相关之间提供平衡的处理,与之前的 Piris 自然轨道泛函(PNOF)一起,使我们能够探索每种类型的相关性在 FeP 状态稳定性顺序中的重要性,方法是保留系统的自旋。值得注意的是,GNOF 对给定基组的所有可用轨道中的所有电子进行相关;在这项工作中使用的双ζ基组的 FeP 情况下,这意味着 GNOF 可以正确地对 465 个轨道中的 186 个电子进行相关,显著增加了可进行多组态处理的系统的大小。结果表明,PNOF5、PNOF7s 和 PNOF7 预测五重态的能量低于三重态;然而,通过二阶 Møller-Plesset 修正(NOF-MP2)添加动态相关,将三重态转变为低于五重态,这一预测也被包含更多动态相关的 GNOF 重现。