Trends in electronic structures and $s_{\pm}$-wave pairing for the rare-earth series in bilayer nickelate superconductor $R_ 3$Ni$_2$O$_7$
Yang Zhang, Ling-Fang Lin, Adriana Moreo, Thomas A. Maier and, Elbio Dagotto

TL;DR
This study theoretically investigates the electronic structures and pairing mechanisms in the entire family of bilayer nickelates R3Ni2O7 under pressure, revealing dominant s±-wave pairing tendencies and optimal conditions for high-temperature superconductivity.
Contribution
It provides a comprehensive theoretical analysis of the pressure effects and pairing tendencies across the rare-earth bilayer nickelates, identifying the most promising candidates for superconductivity.
Findings
s±-wave pairing dominates in all studied compounds
LNO is the most optimal candidate for high Tc
Tc decreases with smaller rare-earth ions
Abstract
The recent discovery of pressure-induced superconductivity in the bilayer LaNiO (LNO) has opened a new platform for the study of unconventional superconductors. In this publication, we investigate theoretically the whole family of bilayer 327-type nickelates NiO ( = Rare-earth elements) under pressure. From La to Lu, the lattice constants and volume decrease, leading to enhanced in-plane and out-of-plane hoppings, resulting in an effectively reduced electronic correlation . Furthermore, the Ni's states shift away from the states, while the crystal-field splitting between and is almost unchanged. In addition, six candidates were found to become stable in the Fmmm phase, with increasing values of critical pressure as the atomic number increased. Similar to the case of LNO, the -wave pairing tendency…
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Taxonomy
TopicsMagnetic and transport properties of perovskites and related materials · Rare-earth and actinide compounds · Iron-based superconductors research
