<div class="csl-bib-body">
<div class="csl-entry">Li, J., Green, R. J., Domínguez, C., Levitan, A., Tseng, Y., Catalano, S., Fowlie, J., Sutarto, R., Rodolakis, F., Korol, L., McChesney, J. L., Freeland, J. W., Van der Marel, D., Gibert, M., & Comin, R. (2024). Signatures of polarized chiral spin disproportionation in rare earth nickelates. <i>Nature Communications</i>, <i>15</i>(1), 1–6. https://doi.org/10.1038/s41467-024-51576-3</div>
</div>
-
dc.identifier.issn
2041-1723
-
dc.identifier.uri
http://hdl.handle.net/20.500.12708/207027
-
dc.description.abstract
In rare earth nickelates (RENiO3), electron-lattice coupling drives a concurrent metal-to-insulator and bond disproportionation phase transition whose microscopic origin has long been the subject of active debate. Of several proposed mechanisms, here we test the hypothesis that pairs of self-doped ligand holes spatially condense to provide local spin moments that are antiferromagnetically coupled to Ni spins. These singlet-like states provide a basis for long-range bond and spiral spin order. Using magnetic resonant X-ray scattering on NdNiO3 thin films, we observe the chiral nature of the spin-disproportionated state, with spin spirals propagating along the crystallographic (101)ortho direction. These spin spirals are found to preferentially couple to X-ray helicity, establishing the presence of a hitherto-unobserved macroscopic chirality. The presence of this chiral magnetic configuration suggests a potential multiferroic coupling between the noncollinear magnetic arrangement and improper ferroelectric behavior as observed in prior studies on NdNiO3 (101)ortho films and RENiO3 single crystals. Experimentally-constrained theoretical double-cluster calculations confirm the presence of an energetically stable spin-disproportionated state with Zhang-Rice singlet-like combinations of Ni and ligand moments.