Electronic structure of early 3d-transition-metal oxides by analysis of the 2p core-level photoemission spectra

Bocquet, A. E. ; Mizokawa, T. ; Morikawa, K. ; Fujimori, A. ; Barman, S. R. ; Maiti, K. ; Sarma, D. D. ; Tokura, Y. ; Onoda, M. (1996) Electronic structure of early 3d-transition-metal oxides by analysis of the 2p core-level photoemission spectra Physical Review B: Condensed Matter and Materials Physics, 53 (3). pp. 1161-1170. ISSN 1098-0121

Full text not available from this repository.

Official URL: http://prb.aps.org/abstract/PRB/v53/i3/p1161_1

Related URL: http://dx.doi.org/10.1103/PhysRevB.53.1161

Abstract

The electronic structures of a wide range of early transition-metal (TM) compounds, including Ti and V oxides with metal valences ranging from 2+ to 5+ and formal d-electron numbers ranging from 0 to 2, have been investigated by a configuration-interaction cluster model analysis of the core-level metal 2p x-ray photoemission spectra (XPS). Inelastic energy-loss backgrounds calculated from experimentally measured electron-energy-loss spectra (EELS) were subtracted from the XPS spectra to remove extrinsic loss features. Parameter values deduced for the charge-transfer energy Δ and the d-d Coulomb repulsion energy U are shown to continue the systematic trends established previously for the late TM compounds, giving support to a charge-transfer mechanism for the satellite structures. The early TM compounds are characterized by a large metal d-ligand p hybridization energy, resulting in strong covalency in these compounds. Values for Δ and U suggest that many early TM compounds should be reclassified as intermediate between the charge-transfer regime and the Mott-Hubbard regime.

Item Type:Article
Source:Copyright of this article belongs to The American Physical Society.
ID Code:46220
Deposited On:02 Jul 2011 12:24
Last Modified:17 Jul 2012 16:01

Repository Staff Only: item control page