paper

Doping evolution of spin excitations in LaSrNiO/SrLaAlO superconducting thin films

arXiv:2603.01120

Abstract

Ambient-pressure superconductivity in compressively strained bilayer nickelate films provides a unique platform to test pairing scenarios, yet the evolution of magnetism with carrier doping remains largely unexplored. Here, we utilize Ni -edge resonant inelastic x-ray scattering to systematically track the evolution of spin and electronic excitations in coherently strained LaSrNiO/SrLaAlO thin films, spanning the superconducting () and overdoped non-superconducting () regimes. We reveal that dispersive spin excitations, characterized by double-stripe correlations and nearly doping-independent exchange scales, persist robustly throughout the entire superconducting dome. In stark contrast, upon entering the overdoped non-superconducting state, this coherent magnetic framework undergoes an abrupt collapse, melting into a heavily damped, low-spectral-weight continuum. We show that this magnetic breakdown is fundamentally driven by a selective doping-induced orbital reconstruction. While the invariant ~eV intra-atomic peak confirms an intact local octahedral crystal field, the concurrent quenching of the ~eV and ~eV features signifies a severe degradation of the apical-oxygen-mediated ---- singlet sector and bilayer charge-transfer coherence. The synchronized demise of coherent spin excitations and macroscopic pairing establishes a direct, doping-controlled link, underscoring that maintaining the localized magnetic framework and robust apical-oxygen coupling is the fundamental prerequisite for high- superconductivity in bilayer nickelates.

9 pages, 4 figures, Supplemental material is available upon reasonable request