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    Intrinsic spin-Hall contribution to the anomalous Hall effect in amorphous GdFeCo ferrimagnet/heavy-metal bilayer systems

    Seong Tae Kim1, Jun-Young Chang2,3, Yun-Chae Jeong1,2, Minhwan Kim2,3, Ah-Yeon Lee4, Jisung Lee4, Yeon Suk Choi4, Seung-Young Park4, Sug-Bong Choe3 et al.

    Kyoung-Whan Kim5,*, Duck-Ho Kim2,†, and Soong-Geun Je1,6,‡

    • *Contact author: kwkim@yonsei.ac.kr
    • †Contact author: uzes@kist.re.kr
    • ‡Contact author: sg.je@jnu.ac.kr

    Phys. Rev. B 112, 014426 – Published 14 July, 2025

    DOI: https://doi.org/10.1103/j45g-c8s1

    Abstract

    We investigate the anomalous Hall effect (AHE) in GdFeCo/Pt, GdFeCo/SiN, and GdFeCo/Ta amorphous ferrimagnet/heavy-metal heterostructures for a wide temperature range including the magnetization compensation temperature. To take into account the peculiar temperature dependence of the magnetization in the ferrimagnet, the FeCo magnetization is extracted and used to normalize the anomalous Hall resistivity. From scaling law analysis, we find that AHE in GdFeCo/Pt and GdFeCo/Ta is mainly due to the intrinsic spin-Hall effect (SHE) occurring in the heavy-metal layers. Our results demonstrate the close correlation between the AHE and the SHE. Given that the AHE also originates in the heavy-metal layers, we also propose a circuit model that allows one to separate the AHE from the ferrimagnet layer and from the heavy-metal layer. In heterostructures of a poorly conductive magnetic layer and a heavy-metal layer, careful analysis is crucial to distinguish whether the AHE originates from the magnetic or the heavy-metal layer.

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