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    Stabilization and Observation of Large-Area Ferromagnetic Bimeron Lattice

    Miming Cai1,2, Shangyuan Wang1,2, Yuelin Zhang1,2, Xiaoqing Bao1,2, Dekun Shen1,2, Jinghua Ren1,2, Lei Qiu1,2, Haiming Yu3, Zhenlin Luo4 et al.

    Mathias Kläui5, Shilei Zhang6, Nicolas Jaouen7, Gerrit van der Laan8, Thorsten Hesjedal9, Ka Shen1,2,10,*, and Jinxing Zhang1,2,†

    • *Contact author: kashen@bnu.edu.cn
    • †Contact author: jxzhang@bnu.edu.cn

    Phys. Rev. Lett. 135, 116703 – Published 11 September, 2025

    DOI: https://doi.org/10.1103/587m-xvgv

    Abstract

    Symmetry engineering is an effective approach for generating emergent phases and quantum phenomena. In magnetic systems, the Dzyaloshinskii-Moriya (DM) interaction is essential for stabilizing chiral spin textures. The symmetry manipulation of DM vectors, described in three dimensions, could provide a strategy toward creating abundant topologically magnetic phases. Here, we have achieved breaking the rotational and mirror symmetries of the three-dimensional DM vectors in a strongly correlated ferromagnet, which were directly measured through the nonreciprocal spin-wave propagations in both in-plane and out-of-plane magnetic field geometries. Combining cryogenic magnetic force microscopy and micromagnetic simulations, we discover a bimeron phase that emerges between the spin spiral and skyrmion phases under an applied magnetic field. Such an artificially manipulated DM interaction is shown to play a critical role in the formation and evolution of the large-area bimeron lattice, a phenomenon that could be realized across a broad range of materials. Our findings demonstrate that symmetry engineering of the DM vectors can be practically achieved through epitaxial strain, paving the way for the creation of diverse spin topologies and the exploration of their emergent functionalities.

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