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    Unconventional mechanism of exchange bias in rare-earth-based kagome magnets

    Peng Wu1,*, Jing Zhang2,4,*, Pierre Vallobra3,†, Yihao Wang2,4,‡, Min Zhang2, Zhizhong Zhang3,5, Weisheng Zhao3,5, and Qingyou Lu2,4,6,§

    • 1Department of Mathematics and Physics, Hebei Key Laboratory of Physics and Energy Technology, North China Electric Power University, Baoding, Hebei 071003, People's Republic of China
    • 2Anhui Key Laboratory of Low-Energy Quantum Materials and Devices, High Magnetic Field Laboratory, HFIPS, Chinese Academy of Sciences, Hefei, Anhui 230031, People's Republic of China
    • 3National Key Laboratory of Spintronics, Institute of International Innovation, Beihang University, Yuhang District, Hangzhou 311115, People's Republic of China
    • 4The High Magnetic Field Laboratory of Anhui Province, Hefei, Anhui 230031, People's Republic of China
    • 5Fert Beijing Institute, School of Integrated Circuit Science and Engineering, Beihang University, Beijing, People's Republic of China
    • 6University of Science and Technology of China, Hefei, Anhui 230026, People's Republic of China

    • *These authors contributed equally to this work.
    • †Contact author: pierrevallobra@buaa.edu.cn
    • ‡Contact author: yihaow@hmfl.ac.cn
    • §Contact author: qxl@ustc.edu.cn

    Phys. Rev. B 112, 014442 – Published 23 July, 2025

    DOI: https://doi.org/10.1103/dm73-7sxs

    Abstract

    The kagome lattice has gained intense attention as a prototypal system for hosting a range of exotic quantum states. Within this family of kagome-based materials, RMn6Sn6 compounds (R=rare-earth element) are notable for fostering intricate interactions among band topology, electron correlation, and magnetism. Recently, exchange-bias (EB) effects were identified in kagome systems, marked by a shifted hysteresis loop after cooling the sample in an external magnetic field, suggesting its potential application in spintronics due to enhanced magnetic state stability. There is ample evidence of EB observed in bulk systems that are not limited to heterostructures, but instead host multiple coexisting magnetic phases, such as antiferromagnetic and ferromagnetic. In this work, we discover that EB arises in certain RMn6Sn6 materials possessing a perpendicular magnetic anisotropy component and a spin-glass cluster. The existence of two different switching mechanisms for each branch of the hysteresis loop gives rise to the presence of EB. In particular, we unveil the role of the spin-glass cluster in the unconventional switching process. Our work offers an in-depth understanding of new magnetic properties of kagome magnets and sets up a potential platform for designing stable magnetic devices.

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