THE ELECTRONIC-STRUCTURE OF LAO - LIGAND-FIELD VERSUS AB-INITIO CALCULATIONS

Citation
J. Schamps et al., THE ELECTRONIC-STRUCTURE OF LAO - LIGAND-FIELD VERSUS AB-INITIO CALCULATIONS, The Journal of chemical physics, 103(18), 1995, pp. 8004-8013
Citations number
64
Categorie Soggetti
Physics, Atomic, Molecular & Chemical
ISSN journal
00219606
Volume
103
Issue
18
Year of publication
1995
Pages
8004 - 8013
Database
ISI
SICI code
0021-9606(1995)103:18<8004:TEOL-L>2.0.ZU;2-P
Abstract
The potentially pathological example of LaO has been chosen to test th e application of ligand field theory (LFT) to metal monoxides. The tes t consists of a comparison of closed-shell ligand LFT (CSLLFT) results (in which a 2(+)/2(-) ionic M(2+)O(2-) model is a priori postulated w ith a point-charge ligand) against ab initio multiconfiguration self-c onsistent-field-multireference configuration interaction (MCSCF-MRCI) results (in which no ionicity is assumed a priori and an internal stru cture is allowed for the ligand). Special care has been devoted to the determination of a La3+ pseudopotential and its associated atomic bas is set in order to keep the ab initio model close to the LFT one, yet at the same time capable of clearly exhibiting the consequences and th e importance of the restrictions imposed in the CSLLFT model. The ab i nitio calculations reveal that the effective (Mulliken) ionicity in La O is not La2+O2- but quite close to La+O-. Despite this, the (2(+)/2(- )) ionic CSLLFT model leads to the correct orbital occupations in the ground state but this model cannot account for the significant covalen cy contribution via the nominal 2p sigma and 2p pi oxygen orbitals. Th e CSLLFT calculations correctly reproduce the excitation energies of t he four lowest-lying observed states of LaO: these states are calculat ed to within 2000 cm(-1) and globally better than via ab initio calcul ations. However, the (2(+)/2(-)) ionic CSLLFT model is shown to ignore the existence of a manifold of low-lying quartet (and doublet) states of (1(+)/1(-)) ionicity that might be relevant for interpreting featu res of the spectrum. This result exemplifies the need for developing, beyond the first attempts made in this direction, a computationally ma nageable open-shell ligand theory for the frequently encountered case of predominantly ionic structures with an open-shell ligand. (C) 1995 American Institute of Physics.