Large phonon thermal Hall conductivity in the antiferromagnetic insulator Cu3TeO6

Author:

Chen Lu1ORCID,Boulanger Marie-Eve1,Wang Zhi-Cheng2,Tafti Fazel2ORCID,Taillefer Louis13ORCID

Affiliation:

1. Département de Physique, Institut Quantique and Regroupement Québécois sur les Matériaux de Pointe, Université de Sherbrooke, Sherbrooke, QC J1K 2R1, Canada

2. Department of Physics, Boston College, Chestnut Hill, MA 02467

3. Canadian Institute for Advanced Research, Toronto, ON M5G 1M1, Canada

Abstract

Phonons are known to generate a thermal Hall effect in certain insulators, including oxides with rare-earth impurities, quantum paraelectrics, multiferroic materials, and cuprate Mott insulators. In each case, a special feature of the material is presumed relevant for the underlying mechanism that confers chirality to phonons in a magnetic field. A fundamental question is whether a phonon Hall effect is an unusual occurrence—linked to special characteristics such as skew scattering off rare-earth impurities, structural domains, ferroelectricity, or ferromagnetism—or a much more common property of insulators than hitherto believed. To help answer this question, we have turned to a material with none of the previously encountered special features: the cubic antiferromagnet Cu3TeO6. We find that its thermal Hall conductivityκxyis among the largest of any insulator so far. We show that this record-highκxysignal is due to phonons, and it does not require the presence of magnetic order, as it persists above the ordering temperature. We conclude that the phonon Hall effect is likely to be a fairly common property of solids.

Funder

DOD | USAF | AMC | Air Force Office of Scientific Research

Publisher

Proceedings of the National Academy of Sciences

Subject

Multidisciplinary

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