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Superconducting phase diagram of multi-layer square-planar nickelates

Superconductivity 2026-02-24 v1 Materials Science Strongly Correlated Electrons

Abstract

The discovery of superconductivity in square-planar nickelates has offered a rich materials platform to explore the origins of cuprate-like superconductivity. Experimental investigations however have largely been limited to the infinite-layer RRNiO2_2 (RR=rare-earth) nickelates. Here, we construct a phase diagram of multi-layer square-planar Ndn+1_{n+1}Nin_nO2n+2_{2n+2} compounds and discover signatures of superconductivity for nn = 4 - 8. Upon decreasing the dimensionality nn, the superconducting anisotropy evolves due to 4ff electron effects, and electronic structure characteristics approach cuprate-like behavior. Magnetic fluctuations persist from within the superconducting regime and into the over-doped, non-superconducting regime. Remarkably, the superconducting regime overlaps with that of chemically-doped infinite-layer nickelates, demonstrating underlying commonalities and distinct differences across varying structural realizations of square-planar nickelates. Our work establishes this layered template for creating new nickel-based superconductors.

Keywords

Cite

@article{arxiv.2602.19093,
  title  = {Superconducting phase diagram of multi-layer square-planar nickelates},
  author = {Grace A. Pan and Dan Ferenc Segedin and Sophia F. R. TenHuisen and Lopa Bhatt and Harrison LaBollita and Abigail Y. Jiang and Qi Song and Ari B. Turkiewicz and Denitsa R. Baykusheva and Abhishek Nag and Stefano Agrestini and Ke-Jin Zhou and Jonathan Pelliciari and Valentina Bisogni and Hua Zhou and Mark P. M. Dean and Hanjong Paik and David A. Muller and Lena F. Kourkoutis and Charles M. Brooks and Matteo Mitrano and Antia S. Botana and Berit H. Goodge and Julia A. Mundy},
  journal= {arXiv preprint arXiv:2602.19093},
  year   = {2026}
}

Comments

13 pages, 5 figures

R2 v1 2026-07-01T10:46:07.973Z