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Staged emergence of anomalous Hall transport in a correlated uranium Weyl semimetal

Published 21 Sep 2026 in cond-mat.str-el and cond-mat.mtrl-sci | (2609.24897v1)

Abstract: Understanding how electronic correlations reshape topological states remains a central challenge in quantum materials. Here we investigate the uranium ferromagnet UPS using magnetotransport, angle-resolved photoemission spectroscopy, thermodynamic measurements, and first principles calculations. Resonant photoemission reveals narrow U-$5f$ spectral weight at the Fermi level coexisting with broad incoherent states, consistent with the itinerant/localized duality characteristic of uranium $5f$ electrons. The anomalous Hall conductivity reaches approximately 4.5×10<sup>2 Ω<sup>−1cm<sup>−14.5\times10<sup>{2}\,Ω<sup>{-1}\mathrm{cm}<sup>{-1}, yet does not simply follow the ordered magnetic moment. Temperature dependent photoemission reveals relatively little change across TC=118T_C=118~K, followed by a pronounced redistribution of low-energy $5f$ spectral weight below approximately 90~K. First-principles calculations identify a symmetry protected Weyl crossing with pronounced Berry curvature and yield an intrinsic anomalous Hall conductivity of approximately 9.6×10<sup>2 Ω<sup>−1cm<sup>−19.6\times10<sup>{2}\,Ω<sup>{-1}\mathrm{cm}<sup>{-1}. These results demonstrate that magnetic order, correlated electronic reconstruction, and anomalous Hall transport develop over distinct but overlapping temperature ranges, revealing how strong correlations reshape topological transport in a uranium Weyl semimetal.

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