First-principles investigation of thermodynamics and electronic transitions in vacancy-ordered rare-earth perovskite nickelates
arXiv:2412.19700
Abstract
Controlled introduction of oxygen vacancies offers an effective route to induce metal-to-insulator transition in strongly correlated rare-earth nickelates (NiO) at room temperature. However, the role played by the rare-earth cations on the structure, thermodynamic stability, and electronic properties of oxygen-deficient nickelates remains unclear. Here, we employ density functional theory calculations with Hubbard corrections (DFT + ) to investigate the whole family of NiO ( = Pr-Er) compounds in two commonly observed oxygen-vacancy ordered configurations, namely brownmillerite, and square planar. We find that square planar polymorph is always more stable (0.4 eV/u.f) than the brownmillerite for all rare-earth cations, owing to the exceedingly low volumetric strains (< 1\%). Formation energy of NiO gradually increases with decreasing size of owing to stronger Ni-O covalent interactions in pristine NiO with small cations. This necessitates more oxygen-lean environments for synthesis of NiO with smaller cations. Analysis of the density of states and band structures reveals that electronic structure of NiO is governed by two factors: (a) localization of electron on NiO octahedra yielding a Mott insulating state with strong correlations as Ni is half filled, and (b) crystal field splitting in the NiO tetrahedra/square planar polyhedra. Brownmillerite NiO is metallic, while square planar NiO is an insulator with a predicted gap of 0.2-0.3 eV, depending on the cation. Crystal orbital Hamilton population (COHP) analysis indicates that the Ni-O bond belonging to square-planar NiO polyhedra exhibit much greater covalent character than those in NiO octahedra in square planar NiO.