Spin-state transition and spin-polaron physics in cobalt oxide perovskites: Ab initio approach based on quantum chemical methods

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Abstract

A fully ab initio scheme based on quantum chemical wavefunction methods is used to investigate the correlated multiorbital electronic structure of a 3d-metal compound, LaCoO3-V The strong short-range electron correlations, involving both Co and O orbitais, are treated by multireference techniques. The use of effective parameters such as the Hubbard U and interorbital U′', J terms and the problems associated with their explicit calculation are avoided with this approach. We compute the ordering of the lowest N-particle states in the parent compound and provide new insight into the nature of charge carriers in the hole-doped material. Our results suggest that the transition to a magnetically active state at about 90 K in LaCoO3 involves a high-spin, t2g4eg2, configuration. Additionally, we explain the paramagnetic phase in the low-temperature lightly doped compound through the formation of Zhang-Rice-like oxygen hole states and ferromagnetic clusters. © IOP Publishing Ltd and Deutsche Physikalische Gesellschaft.

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Hozoi, L., Birkenheuer, U., Stoll, H., & Fulde, P. (2009). Spin-state transition and spin-polaron physics in cobalt oxide perovskites: Ab initio approach based on quantum chemical methods. New Journal of Physics, 11. https://doi.org/10.1088/1367-2630/11/2/023023

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