Sudden collapse of magnetic order in oxygen deficient nickelate films
Jiarui Li, Robert J. Green, Zhen Zhang, Ronny Sutarto, Jerzy T., Sadowski, Zhihai Zhu, Grace Zhang, Da Zhou, Yifei Sun, Feizhou He, Shriram, Ramanathan, Riccardo Comin

TL;DR
This study reveals how oxygen vacancies in nickelate films drastically alter their electronic and magnetic properties, leading to a sudden collapse of magnetic order without structural change, with implications for spintronics.
Contribution
It demonstrates that magnetic order in oxygen-deficient nickelates is surprisingly robust to doping but can abruptly vanish due to disruption of magnetic superexchange pathways.
Findings
Oxygen vacancies modify Ni-O electronic configurations.
Magnetic order weakens moderately with doping, then abruptly disappears.
Magnetic transition temperature remains largely unchanged.
Abstract
Oxygen vacancies play a crucial role in the control of the electronic, magnetic, ionic, and transport properties of functional oxide perovskites. Rare earth nickelates (RENiO) have emerged over the years as a rich platform to study the interplay between the lattice, the electronic structure, and ordered magnetism. In this study, we investigate the evolution of the electronic and magnetic structure in thin films of RENiO, using a combination of X-ray absorption spectroscopy and imaging, resonant X-ray scattering, and extended multiplet ligand field theory modeling. We find that oxygen vacancies modify the electronic configuration within the Ni-O orbital manifolds, leading to a dramatic evolution of long-range electronic transport pathways despite the absence of nanoscale phase separation. Remarkably, magnetism is robust to substantial levels of carrier doping, and only a…
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