Recent progress in nickelate superconductors
arXiv:2509.08386 · doi:10.1093/nsr/nwaf373
Abstract
The discovery of superconductivity in nickelate compounds has opened new avenues in the study of high-temperature superconductors. Here we provide a comprehensive overview of recent progress in the field, including all different nickelate systems, reduced-Ruddlesden-Popper-type infinite layer LaNiO, Ruddlesden-Popper-type bilayer LaNiO and trilayer LaNiO. We begin by introducing the superconducting properties of the hole-doped LaNiO system, which marked the starting point for nickelate superconductivity. We then turn to the bilayer LaNiO system, discussing both its high-pressure and thin-film superconducting phases. This is followed by an examination of the trilayer LaNiO system and other related multilayer nickelates. Throughout the review, we highlight emerging trends, key challenges, and open questions. We conclude by addressing current limitations in materials synthesis and characterization, and future directions that may help uncover the mechanisms driving superconductivity in these complex oxide systems.
18 pages, 11 figures
References in corpus (8)
- High-temperature superconductivity in iron-based materials
- Nickelate superconductivity without rare-earth magnetism: (La,Sr)NiO
- Self-doped Mott insulator for parent compounds of nickelate superconductors
- High- superconductivity by mobilizing local spin singlets and possible route to higher in pressurized LaNiO
- Trends in electronic structures and -wave pairing for the rare-earth series in bilayer nickelate superconductor NiO
- The dawn of the nickel age of superconductivity
- Theory of magnetic excitations in multilayer nickelate superconductor LaNiO
- Strain-tuning for superconductivity in LaNiO thin films