Electronic Structure Trends Across the Rare-Earth Series in Superconducting Infinite Layer Nickelates
Abstract
The recent discovery of superconductivity in oxygen-reduced monovalent nickelates has raised a new platform for the study of unconventional superconductivity, with similarities and differences with the cuprate high temperature superconductors. In this paper we investigate the family of infinite-layer nickelates NiO with rare-earth spanning across the lanthanide series, introducing a new and non-trivial "knob" with which to tune nickelate superconductivity. When traversing from La to Lu, the out-of-plane lattice constant decreases dramatically with an accompanying increase of Ni bandwidth; however, surprisingly, the role of oxygen charge transfer diminishes. In contrast, the magnetic exchange grows across the lanthanides which may be favorable to superconductivity. Moreover, compensation effects from the itinerant electrons present a closer analogy to Kondo lattices, indicating a stronger interplay between charge transfer, bandwidth renormalization, compensation, and magnetic exchange. We also obtain the microscopic Hamiltonian using Wannier downfolding technique, which will provide the starting point for further many-body theoretical studies.
Keywords
Cite
@article{arxiv.2002.12300,
title = {Electronic Structure Trends Across the Rare-Earth Series in Superconducting Infinite Layer Nickelates},
author = {Emily Been and Wei-Sheng Lee and Harold Y. Hwang and Yi Cui and Jan Zaanen and Thomas Devereaux and Brian Moritz and Chunjing Jia},
journal= {arXiv preprint arXiv:2002.12300},
year = {2021}
}