English

Electronic Structure Trends Across the Rare-Earth Series in Superconducting Infinite Layer Nickelates

Superconductivity 2021-03-16 v2

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 RRNiO2_2 with rare-earth RR 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 dx2y2 d_{x^2-y^2} 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 5d5d 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}
}