Renormalization of effective interactions in a negative charge-transfer insulator
Abstract
We compute from first principles the effective interaction parameters appropriate for a low-energy description of the rare-earth nickelate LuNiO involving the partially occupied states only. The calculation uses the constrained random-phase approximation and reveals that the effective on-site Coulomb repulsion is strongly reduced by screening effects involving the oxygen- and nickel- states. The long-range component of the effective low-energy interaction is also found to be sizeable. As a result, the effective on-site interaction between parallel-spin electrons is reduced down to a small negative value. This validates effective low-energy theories of these materials proposed earlier. Electronic structure methods combined with dynamical mean-field theory are used to construct and solve an appropriate low-energy model and explore its phase diagram as a function of the on-site repulsion and Hund's coupling. For the calculated values of these effective interactions we find, in agreement with experiments, that LuNiO is a metal without disproportionation of the occupancy when considered in its orthorhombic structure, while the monoclinic phase is a disproportionated insulator.
Keywords
Cite
@article{arxiv.1707.09820,
title = {Renormalization of effective interactions in a negative charge-transfer insulator},
author = {Priyanka Seth and Oleg E. Peil and Leonid Pourovskii and Markus Betzinger and Christoph Friedrich and Olivier Parcollet and Silke Biermann and Ferdi Aryasetiawan and Antoine Georges},
journal= {arXiv preprint arXiv:1707.09820},
year = {2017}
}
Comments
10 pages, 4 figures