Insulator-bad metal transition in RNiO nickelates beyond Hubbard model and density functional theory
arXiv:2508.07377 · doi:10.1134/S0021364025600065
Abstract
The insulator-bad metal transition observed in the Jahn-Teller (JT) magnets orthonickelates RNiO (R = rare earth or yttrium Y) is considered to be a canonical example of the Mott transition, traditionally described in the framework of the Hubbard --model and the density functional theory. However, actually the real insulating phase of nickelates is the result of charge disproportionation (CD) with the formation of a system of spin-triplet (S=1) electron [NiO] and spinless (S=0) hole [NiO] centers, equivalent to a system of effective spin-triplet composite bosons moving in a nonmagnetic lattice. Taking account of only charge degree of freedom we develop a novel minimal ---model for nickelates making use of the charge triplet model with the pseudospin formalism and effective field approximation. We show the existence of two types of CD-phases, high-temperature classical CO-phase with the G-type charge ordering of electron and hole centers, and low-temperature quantum CDq-phase with charge and spin density transfer between electron and hole centers, uncertain valence and spin value for NiO centers. Model -R phase diagram reproduces main features of the phase diagram found for RNiO.
12 pages, 4 figures, 1 table
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