Interlayer Five-Spin Polaron in Superconducting Bilayer Nickelates
Abstract
The discovery of high- superconductivity in Ruddlesden-Popper nickelates has sparked substantial effort towards understanding unconventional electronic states beyond a traditional cuprate-like d^9 configurational ground state. An understanding of the interplay between magnetic ground states and multi-orbital physics is key for establishing a microscopic mechanism for superconductivity. In the bilayer nickelates, spin density wave (SDW) order is a prominent feature in the non-superconducting regime. However, its relation to superconducting pairing remains an open question. Here, we use resonant x-ray scattering to examine the existence of SDW order in superconducting bilayer nickelate thin films LaPrNiO (LPNO). Comparing superconducting and oxygen-deficient LPNO thin films, we find that superconductivity occurs in SDW-free, oxygen-stoichiometric regions, whereas oxygen-deficiency promotes SDW order, indicating phase segregation of SDW and superconductivity. Furthermore, Ni- and O- edge spectroscopy reveals distinct electronic structures - particularly along the -axis - between the two domains. Our results identify oxygen stoichiometry as a key parameter controlling interlayer coupling and thus the electronic structure of bilayer nickelates. In concert with theory, we propose that a ligand hole primarily resides at the inter-bilayer apical oxygen, forming a robust interlayer five-spin polaron state, which serves as the ground state for superconducting bilayer nickelates.
Cite
@article{arxiv.2605.02891,
title = {Interlayer Five-Spin Polaron in Superconducting Bilayer Nickelates},
author = {Jiarui Li and Christopher T. Parzyck and Eder G. Lomeli and Yidi Liu and Taehun Kim and Heemin Lee and Zengqing Zhuo and Eun Kyo Ko and Yaoju Tarn and Cheng-Tai Kuo and Ronny Sutarto and Chunjing Jia and Vivek Thampy and Brian Moritz and Yijun Yu and Jun-Sik Lee and Valentina Bisogni and Thomas P. Devereaux and Harold Y. Hwang and Wei-Sheng Lee},
journal= {arXiv preprint arXiv:2605.02891},
year = {2026}
}