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    Interplay of magnetic and thermodynamic responses in the kagome triangular system R3Sb3A2O14 (R=rare earth; A=Mg, Zn)

    Zixuan Jia1, Lufeng Zhang2, Qingzhuo Duan1, Zenghui Fan1, Jingyao Wang3, Ying Liang4,1,*, Bing Huang5,1, and Tianxing Ma1,†

    • *Contact author: liangying@hebtu.edu.cn
    • †Contact author: txma@bnu.edu.cn

    Phys. Rev. B 113, 195109 – Published 13 May, 2026

    DOI: https://doi.org/10.1103/pv49-sq4y

    Abstract

    Inspired by the recent experimental progress in pyrochlore derivative R3Sb3A2O14 (R=rare earth; A=Mg, Zn), we investigate the Hubbard model on the kagome lattice with an additional hopping t′/t, which enables continuous interpolation between the kagome and triangular lattices by using determinant quantum Monte Carlo simulations. We find that increasing t′/t suppresses the nearest-neighbor antiferromagnetic correlations. Concurrently, the next-nearest-neighbor antiferromagnetic correlations are enhanced and closely associated with the emergence of a pronounced low-temperature peak in the specific heat. Increasing on-site interaction U enhances magnetic correlations and shifts the associated t′/t crossover points to larger values. We also discuss the sign problem to clarify which parameter region of our numerical simulations is accessible and reliable. Our results uncover the competition between frustration and correlations and the interplay of magnetic and thermodynamic responses in the kagome lattice, providing insights into correlated states in frustrated materials.

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