Large transverse thermoelectric effect induced by the mixed-dimensionality of Fermi surfaces.

Manako, Hikari; Ohsumi, Shoya; Sato, Yoshiki J; Okazaki, R; Aoki, D · Nat Commun · 2024

basic_science · Level V

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Abstract

Transverse thermoelectric effect, the conversion of longitudinal heat current into transverse electric current, or vice versa, offers a promising energy harvesting technology. Materials with axis-dependent conduction polarity, known as p × n-type conductors or goniopolar materials, are potential candidate, because the non-zero transverse elements of thermopower tensor appear under rotational operation, though the availability is highly limited. Here, we report that a ternary metal LaPt<sub>2</sub>B with unique crystal structure exhibits axis-dependent thermopower polarity, which is driven by mixed-dimensional Fermi surfaces consisting of quasi-one-dimensional hole sheet with out-of-plane velocity and quasi-two-dimensional electron sheets with in-plane velocity. The ideal mixed-dimensional conductor LaPt<sub>2</sub>B exhibits an extremely large transverse Peltier conductivity up to ∣α<sub>yx</sub>∣ = 130 A K<sup>-1</sup> m<sup>-1</sup>, and its transverse thermoelectric performance surpasses those of topological magnets utilizing the anomalous Nernst effect. These results thus manifest the mixed-dimensionality as a key property for efficient transverse thermoelectric conversion.