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    Magnetism in antiperovskite (Li2M)ChO (M=Fe,Mn,Co; Ch=S,Se) diluted magnets with fixed 1/3 filling: The key role of magnetic anisotropy

    J. Zheng1, F. L. Carstens1, L. Singer1, M. A. A. Mohamed2,3, L. Bischof1, A. Alfonsov2, J. Arneth1, S. Hampel2, N. Gräßler2 et al.

    R. Klingeler1,*

    • *Contact author: klingeler@kip.uni-heidelberg.de

    Phys. Rev. B 114, 144413 – Published 11 September, 2026

    DOI: https://doi.org/10.1103/nc1f-83sm

    Abstract

    We report the magnetic properties of a series of lithium-rich antiperovskites (Li2M)ChO (M=Fe,Co,Mn and Ch=Se,S), where transition metal and lithium ions are randomly distributed on the X sites of the X3BA structure, thereby forming a strongly diluted magnetic sublattice. Our study hence enables us to investigate the evolution of magnetic order at fixed 1/3 filling—which is in the vicinity but slightly above the percolation threshold—upon variation of the spin size, the magnetic anisotropy, and the orbital configuration. The data imply the absence of a distinct Curie-Weiss behavior up to 350 K but show rather large and weakly temperature-dependent magnetic susceptibility. We observe clear signatures of long-range antiferromagnetic order evolving in the 1/3-filled and strongly diluted magnetic X-site lattice with increasing Néel temperatures from TN≃30K in (Li2Mn)ChO to ≃50K in (Li2Fe)ChO and 70−90K in (Li2Co)ChO. Except for M=Co, the chalcogenide has no sizable effect on TN. We conclude significant magnetic coupling and short-range magnetic correlations at well above TN, which is in line with the observation of a broad electron spin resonance signal at room temperature. The actual ordering temperatures are strongly diminished by magnetic dilution. While structural parameters such as the tolerance factor and bonding angles do not strongly affect TN, a key parameter is the magnetic anisotropy of the transition metals.

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