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    Thermal Hall conductivity of electron-doped cuprates: Electrons and phonons

    Marie-Eve Boulanger1,*, Lu Chen1,*, Vincent Oliviero2, David Vignolles2, Gaël Grissonnanche1,3,4, Ke-Jun Xu5,6,7, Zhi-Xun Shen5,6,7, Cyril Proust2,4, Jordan Baglo1,† et al.

    Louis Taillefer1,4,8,‡

    • *These author's contributed equally to this work.
    • †Contact author: jordan.baglo@usherbrooke.ca
    • ‡Contact author: louis.taillefer@usherbrooke.ca

    Phys. Rev. B 113, 094511 – Published 12 March, 2026

    DOI: https://doi.org/10.1103/tyf9-thv8

    Abstract

    It has recently become clear that phonons generate a sizable thermal Hall effect in cuprates, whether they are undoped, electron-doped or hole-doped (inside the pseudogap phase). At higher doping, where cuprates are reasonably good metals, mobile electrons also generate a thermal Hall effect, the thermal equivalent of the standard electrical Hall effect. Here we show that in the cleanest crystals of the electron-doped cuprate Nd2−xCexCuO4, at high doping, the phonon and electron contributions to the thermal Hall conductivity κxy are of comparable magnitude, but of opposite sign. In samples of lower quality, phonons dominate κxy, resulting in a negative κxy at all temperatures. The fact that the negative phononic κxy in the metallic state is similar in magnitude and temperature dependence to that found in the insulating state at lower doping rules out any mechanism based on skew scattering of phonons off charged impurities, since a local charge should be screened in the metallic regime. The phononic κxy is found to persist over the entire doping range where antiferromagnetic correlations are known to be significant, suggesting that such correlations may play a role in generating the phonon thermal Hall effect in electron-doped cuprates. If the same mechanism is also at play in hole-doped cuprates, the presence of a phononic κxy below (and only below) the critical doping p★ would be evidence that spin correlations are a property of the pseudogap phase.

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