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arXiv · 2505.00086

Nonlinear thermoelectric effects driven by electron quantum geometry

Abstract

Nonlinear thermoelectric effects offer the potential to enable new energy technologies, such as voltage-controlled thermal switching and thermoelectric rectification. In this work, we examine how quantum geometry of the electron bands gives rise to nonlinear thermoelectric responses in materials with suitable symmetries.} We derive a series of nonlinear thermoelectric effects governed by the Berry curvature dipole and the quantum metric dipole, respectively. Among them, we identify a particularly interesting quantized thermoelectric response that directly measures the total chirality of Weyl points below the Fermi level. For general nonlinear responses, we derive the nonlinear analogs of the Wiedemann-Franz law and Mott's formula. These provide a means to estimate the magnitude of nonlinear thermoelectric responses based on existing nonlinear Hall measurements. Our estimates suggest that these effects should be observable in several candidate materials, with In-doped Pb$_{1-x}$Sn$_x$Te standing out as the most promising. Our work offers new insights into the experimental study of quantum geometry through nonlinear thermoelectric measurements.

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Xu Yang, Brian Skinner. 2026-08-28. Nonlinear thermoelectric effects driven by electron quantum geometry. https://doi.org/10.1103/f659-cgsd

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