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Conventional and planar thermal Hall effect in a Kagome lattice antiferromagnet

ORAL

Abstract

The quantum spin liquid (QSL) is an exotic state of matter where spins remain highly entangled and disordered even at zero temperature. The recently discovered Kagome lattice antiferromagnet YCu3(OH)6Br2[Brx(OH)1−x] (YCOB) has emerged as a promising candidate. We present a detailed investigation of the thermal conductivity and the thermal Hall effect in single crystals of YCOB. Despite being a large bandgap insulator, YCOB exhibits a positive thermal Hall effect across a wide temperature range, even though the heat carriers in this material are chargeless. Notably, as the temperature drops below ~ 4 K, the thermal Hall effect undergoes a sign reversal. Furthermore, we observed a pronounced planar thermal Hall effect as the external magnetic field was rotated from the out-of-plane direction to the direction aligned with the thermal current. These findings provide deeper insights into the thermal transport properties of the QSL candidate YCOB and point toward potential phonon-mediated chirality in this intriguing Kagome lattice antiferromagnet.

Presenters

  • Dechen Zhang

    University of Michigan

Authors

  • Dechen Zhang

    University of Michigan

  • Kuan-Wen Chen

    University of Michigan

  • Guoxin Zheng

    University of Michigan

  • Yuan Zhu

    University of Michigan

  • Byungmin Kang

    Massachusetts Institute of Technology

  • Kaila G Jenkins

    University of Michigan

  • Aaron Leonard Chan

    University of Michigan

  • Zhenyuan Zeng

    Chinese Academy of Sciences, Institute of Physics, Chinese Academy of Sciences

  • Patrick A Lee

    Massachusetts Institute of Technology, Department of Physics, MIT, Cambridge, MA, USA

  • Shiliang Li

    Chinese Academy of Sciences

  • Lu Li

    University of Michigan