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    Magnetic and electric properties of the metallic kagome antiferromagnet CrRhAs

    Franziska Breitner1, Bin Shen1,*,†, Anton Jesche1, Alexander A. Tsirlin2,‡, and Philipp Gegenwart1,§

    • 1Experimental Physics VI, Center for Electronic Correlations and Magnetism, University of Augsburg, 86159 Augsburg, Germany
    • 2Felix Bloch Institute for Solid-State Physics, University of Leipzig, 04103 Leipzig, Germany

    • *Contact author: bin.shen@physik.uni-augsburg.de
    • †Present address: National Laboratory of Solid State Microstructures, School of Physics and Collaborative Innovation Center of Advanced Microstructures, Nanjing University, Nanjing, China.
    • ‡Contact author: altsirlin@gmail.com
    • §Contact author: philipp.gegenwart@physik.uni-augsburg.de

    Phys. Rev. Materials 10, 064204 – Published 30 June, 2026

    DOI: https://doi.org/10.1103/d449-1tfw

    Abstract

    CrRhAs is an antiferromagnetic kagome metal predicted to host a nontrivial spin texture with vector spin chirality [Huang et al., npj Quantum Mater. 8, 32 (2023)]. We report the synthesis and basic characterization of CrRhAs single crystals, which exhibit an antiferromagnetic transition with TN = 150 K, evidenced by electrical transport, heat capacity, and magnetization measurements. Hall resistivity varies linearly with magnetic field, i.e., there is no nonlinear Hall contribution. Intriguingly, the Hall coefficient changes sign between the configurations of j∥ab,H⊥ab and j∥c,H⊥c, which is likely connected to a peculiar topology of the Fermi surface. Furthermore, for j∥ab, the Hall coefficient shows a pronounced and continuous enhancement below TN, signaling a significant reconstruction of the Fermi surface or an extra scattering from the magnons. Our results offer guidance for exploring anomalous electrical transport phenomena in exotic magnetic systems.

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    This article appears in the following collection:

    Quantum Phenomena in Kagome Materials

    The Editors of Physical Review Materials are pleased to present the Collection on Quantum Phenomena in Kagome Materials, highlighting cutting-edge advances in theory, synthesis, properties and applications of kagome materials. The Collection is being guest-edited by Mingda Li (MIT), Xiangang Wan (Nanjing University) and Linda Ye (Caltech). Every article published in this collection underwent a rigorous peer review process, adhering to the same high standards applied to all papers. The Physical Review Materials editorial team managed the peer review and made all editorial decisions.

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