Designing giant Hall response in layered topological semimetals.

Skorupskii, Grigorii; Orlandi, Fabio; Robredo, Iñigo; Jovanovic, Milena; Yamada, Rinsuke; Katmer, Fatmagül; Vergniory, Maia G; Manuel, Pascal et al. · Nat Commun · 2024

basic_science · Level V

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Abstract

Noncoplanar magnets are excellent candidates for spintronics. However, such materials are difficult to find, and even more so to intentionally design. Here, we report a chemical design strategy that allows us to find a series of noncoplanar magnets-Ln<sub>3</sub>Sn<sub>7</sub> (Ln = Dy, Tb)-by targeting layered materials that have decoupled magnetic sublattices with dissimilar single-ion anisotropies and combining those with a square-net topological semimetal sublattice. Ln<sub>3</sub>Sn<sub>7</sub> shows high carrier mobilities upwards of 17,000 cm<sup>2</sup> ⋅ V<sup>-1</sup> ⋅ s<sup>-1</sup>, and hosts noncoplanar magnetic order. This results in a giant Hall response with an anomalous Hall angle of 0.17 and Hall conductivity of over 42,000 Ω<sup>-1</sup> ⋅ cm<sup>-1</sup>-a value over an order of magnitude larger than the established benchmarks in Co<sub>3</sub>Sn<sub>2</sub>S<sub>2</sub> and Fe thin films.