English

Oxygen vacancy induced site-selective mott transition in lanio3

Strongly Correlated Electrons 2021-02-24 v2

Abstract

While defects such as oxygen vacancies in correlated materials can modify their electronic properties dramatically, understanding the microscopic origin of electronic correlations in materials with defects has been elusive. Lanthanum nickelate with oxygen vacancies, LaNiO3x_{3-x}, exhibits the metal-to-insulator transition as the oxygen vacancy level xx increases from the stoichiometric LaNiO3_3. In particular, LaNiO2.5_{2.5} exhibits a paramagnetic insulating phase, also stabilizing an antiferromagnetic state below TN152T_N\simeq152K. Here, we study the electronic structure and energetics of LaNiO3x_{3-x} using first-principles. We find that LaNiO2.5_{2.5} stabilizes a vacancy-ordered structure with an insulating ground state and the nature of the insulating phase is a "site-selective" paramagnetic Mott state as obtained using density functional theory plus dynamical mean field theory (DFT+DMFT). The Ni octahedron site develops a Mott insulating state with strong correlations as the Ni ege_g orbital is half-filled while the Ni square-planar site with apical oxygen vacancies becomes a band insulator. Our oxygen vacancy results can not be explained by the pure change of the Ni oxidation state alone within the rigid band shift approximation. Our DFT+DMFT density of states explains that the peak splitting of unoccupied states in LaNiO3x_{3-x} measured by the experimental X-ray absorption spectra originates from two nonequivalent Ni ions in the vacancy-ordered structure.

Keywords

Cite

@article{arxiv.2011.03015,
  title  = {Oxygen vacancy induced site-selective mott transition in lanio3},
  author = {Xingyu Liao and Vijay Singh and Hyowon Park},
  journal= {arXiv preprint arXiv:2011.03015},
  year   = {2021}
}
R2 v1 2026-06-23T19:56:47.661Z