English

Geometric effects in the infinite-layer nickelates

Superconductivity 2022-05-02 v2 Materials Science Strongly Correlated Electrons

Abstract

Geometric effects in the infinite-layer nickelates RRNiO2_2 associated with the relative size of the RR-site atom are investigated via first-principles calculations. We consider, in particular, the prospective YNiO2_2 material to illustrate the impact of these effects. Compared to LaNiO2_2, we find that the La \to Y substitution is equivalent to a pressure of 19 GPa and that the presence of topotactic hydrogen can be precluded. However, the electronic structure of YNiO2_2 departs from the cuprate-like picture due to an increase in both self-doping effect and ege_g hybridization. Furthermore, we find that geometric effects introduce a quantum critical point in the RRNiO2_2 series. This implies a P4/mmmI4/mcmP4/mmm \leftrightarrow I4/mcm structural transformation associated to a A3+A_3^+ normal mode, according to which the oxygen squares undergo an in-plane rotation around Ni that alternates along cc. We find that such a A3+A_3^+-mode instability has a generic character in the infinite-layer nickelates and can be tuned via either the effective RR-site atom size or epitaxial strain.

Cite

@article{arxiv.2110.13580,
  title  = {Geometric effects in the infinite-layer nickelates},
  author = {F. Bernardini and A. Bosin and A. Cano},
  journal= {arXiv preprint arXiv:2110.13580},
  year   = {2022}
}

Comments

6 pages, 4 figures, 4 tables

R2 v1 2026-06-24T07:11:40.065Z