Afdeling Kwantumchemie en Fysicochemie, Katholieke Universiteit Leuven, Celestijnenlaan 200F, B-3001 Leuven, Belgium.
J Chem Phys. 2012 Aug 14;137(6):064112. doi: 10.1063/1.4739763.
A methodology for the rigorous nonperturbative derivation of magnetic pseudospin Hamiltonians of mononuclear complexes and fragments based on ab initio calculations of their electronic structure is described. It is supposed that the spin-orbit coupling and other relativistic effects are already taken fully into account at the stage of quantum chemistry calculations of complexes. The methodology is based on the establishment of the correspondence between the ab initio wave functions of the chosen manifold of multielectronic states and the pseudospin eigenfunctions, which allows to define the pseudospin Hamiltonians in the unique way. Working expressions are derived for the pseudospin Zeeman and zero-field splitting Hamiltonian corresponding to arbitrary pseudospins. The proposed calculation methodology, already implemented in the SINGLE_ANISO module of the MOLCAS-7.6 quantum chemistry package, is applied for a first-principles evaluation of pseudospin Hamiltonians of several complexes exhibiting weak, moderate, and very strong spin-orbit coupling effects.
描述了一种基于单核配合物和碎片的电子结构从头算严格非微扰推导磁赝自旋哈密顿量的方法。假设在配合物的量子化学计算阶段已经充分考虑了自旋轨道耦合和其他相对论效应。该方法基于建立所选多电子态流形的从头算波函数与赝自旋本征函数之间的对应关系,这允许以唯一的方式定义赝自旋哈密顿量。针对任意赝自旋,推导出赝自旋塞曼和零场分裂哈密顿量的工作表达式。所提出的计算方法已经在 MOLCAS-7.6 量子化学包的 SINGLE_ANISO 模块中实现,用于对表现出弱、中和强自旋轨道耦合效应的几个配合物的赝自旋哈密顿量进行第一性原理评估。