Journal of Physical Chemistry A, Vol.121, No.40, 7613-7618, 2017
First-Principles Fe L-2,L-3-Edge and O K-Edge XANES and XMCD Spectra for Iron Oxides
X-ray absorption near-edge structure (XANES) and X-ray magnetic circular dichroism (XMCD) spectroscopies are tools in widespread use for providing detailed local atomic structure, oxidation state, and magnetic structure information for materials and organometallic complexes. The analysis of these spectra for transition-metal L-edges is routinely performed on the basis of ligand-field multiplet theory because one-and two particle mean-field ab initio methods typically cannot describe the multiplet structure. Here we show that multireference configuration interaction (MRCI), calculations can satisfactorily reproduce measured XANES spectra for a range of complex iron oxide materials including hematite and magnetite. MRCI Fe L-2,L-3- edge XANES and XMCD spectra of Fe(II)O-6, Pe(III)O-6, and Fe(III)O-4 in magnetite are found to, be in very good qualitative agreement with experiment and multiplet calculations. Point charge embedding and Small distortions of the first-shell oxygen ligands have only small effects. Oxygen K-edge XANES/XMCD spectra for magnetite investigated by a reahspace Green's function approach complete the, very good qualitative agreement with experiment. Material-specific differences in local coordination and site symmetry are well reproduced, making the approach useful for assigning spectral features to specific oxidation states and coordination environments: