Intrinsic anomalous Hall response in the bilayer kagome ferromagnet Co3Sn
Yuqi Qin, Soumya Sankar, Xingkai Cheng, Yifan Jiang, Shiming Lei, Junwei Liu, Berthold Jäck
Abstract
Transition-metal kagome magnets provide a rich platform for investigating the interplay between layer stacking, magnetic order, and band topology. Here, we report the molecular beam epitaxy and experimental investigation of high-quality thin films of the kagome metal Co3Sn, which has not been synthesized in bulk form yet. Structural and chemical analyses confirm a hexagonal lattice structure (P63/mmc) composed of direct A-B stacked Co3Sn kagome bilayers. Magnetometry reveals robust easy-plane ferromagnetism with a Curie temperature exceeding 300\,K. Magneto-transport measurements demonstrate metallic behavior (carrier density n≈5.01×1022\,cm-3) alongside a temperature-independent anomalous Hall conductivity of σ AHE≈90\,Ω-1· cm-1, extending from 2\,K up to room temperature. Results from first-principles density functional theory calculations attribute this anomalous Hall response to intrinsic Berry curvature hotspots near the Fermi level in the spin-split band structure. Our results establish Co3Sn as a room-temperature kagome ferromagnet and highlight the impact of the layer stacking sequence on the material properties of kagome metals from the CoSn family.
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