English

First-principles study of crystal and electronic structure of rare-earth cobaltites

Strongly Correlated Electrons 2016-07-27 v2 Materials Science

Abstract

Using density functional theory plus self-consistent Hubbard UU (DFT+Usc+U_{sc}) calculations, we have investigated the structural and electronic properties of the rare-earth cobaltites \textit{R}CoO3_3 (\textit{R} = Pr -- Lu). Our calculations show the evolution of crystal and electronic structure of the insulating low-spin (LS) \textit{R}CoO3_3 with increasing rare-earth atomic number (decreasing ionic radius), including the invariance of the Co-O bond distance (dCoOd_{Co-O}), the decrease of the Co-O-Co bond angle (Θ\Theta), and the increase of the crystal field splitting (ΔCF\Delta_{CF}) and band gap energy (EgE_g). Agreement with experiment for the latter improves considerably with the use of DFT+Usc+U_{sc} and all trends are in good agreement with experimental data. These trends enable a direct test of prior rationalizations of the trend in spin-gap associated with the spin crossover in this series, which is found to expose significant issues with simple band based arguments. We also examine the effect of placing the rare-earth \textit{f}-electrons in the core region of the pseudopotential. The effect on lattice parameters and band structure is found to be small, but distinct for the special case of \textit{Pr}CoO3_3 where some \textit{f}-states populate the middle of the gap, consistent with recent reports of unique behavior in Pr-containing cobaltites. Overall, this study establishes a foundation for future predictive studies of thermally induced spin excitations in rare-earth cobaltites and similar systems.

Keywords

Cite

@article{arxiv.1512.05765,
  title  = {First-principles study of crystal and electronic structure of rare-earth cobaltites},
  author = {M. Topsakal and C. Leighton and R. M. Wentzcovitch},
  journal= {arXiv preprint arXiv:1512.05765},
  year   = {2016}
}