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    Impact of stealthy hyperuniform magnetic impurity configurations on bulk magnetism in a two-dimensional Heisenberg model

    Kota Asakura*, Kazuki Yamamoto†, and Akihisa Koga‡

    • *Contact author: asakura@stat.phys.titech.ac.jp
    • †Present address: Research Institute for Innovation and Co-Creation, Osaka Metropolitan University, Sakai, Osaka 599-8531, Japan; Department of Physics, Osaka Metropolitan University, Sumiyoshi, Osaka 558-8585, Japan.
    • ‡Present address: Department of Physics, Chuo University, Bunkyo, Tokyo 112-8551, Japan.

    Phys. Rev. B 114, 024403 – Published 1 July, 2026

    DOI: https://doi.org/10.1103/w96y-wgvs

    Abstract

    We investigate an antiferromagnetic quantum Heisenberg model on a square lattice with high-spin magnetic impurities to clarify how random and stealthy hyperuniform impurity configurations influence the bulk magnetic properties. Stealthy hyperuniform configurations are generated using generalized cost functions that interpolate between square-lattice-like and triangular-lattice-like arrangements. Using linear spin-wave theory for the mixed-spin model, we demonstrate that triangular-lattice-like arrangements yield a larger average staggered magnetization than both random and square-lattice-like cases. This enhancement originates from sublattice effects: while the square-lattice-like configuration enforces nearest-neighbor impurities to occupy opposite sublattices due to its bipartite structure, the triangular-lattice-like arrangement allows same-sublattice nearest-neighbor pairs, thereby strengthening cooperative magnetic enhancement.

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