Relativistic Effects in Ligand Field Theory (I): Optical Properties of d1Atoms in Oh′Symmetry

Autor: Pérez-Torres, Jhon Fredy
Zdroj: Inorganic Chemistry; 20240101, Issue: Preprints
Abstrakt: Ligand field theory, which explains the splitting of degenerate nd atomic orbitals due to static electric fields from point-charge ligands, is rederived using Dirac orbitals instead of Schrödinger orbitals, specifically using the nd3/2and nd5/2spinors. This formalism is, to some extent, equivalent to incorporating the spin–orbit interaction either in the nd atomic orbitals or in the ligand field orbitals (e.g., the t2gand egorbitals arising from Ohsymmetry). The spin–orbit interaction is of fundamental importance in the description of the magnetic and optical properties of the 4d and 5d transition metal complexes. Algebraic equations for the relativistic energy levels of d1octahedral complexes as functions of the spin–orbit coupling constant ξndand the ligand field parameters Dqand Dpare derived. It is demonstrated that these parameters allow a direct link between the ligand field theory and ab initio relativistic calculations, consistent with the emerging ab initio ligand field theory. The spin–orbit coupling constant and ligand field parameters of ReF6obtained from optical absorption spectra are carefuly in the light of the new theory.
Databáze: Supplemental Index