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    Observation of Antiferromagnetic Order as Odd-Parity Multipoles inside the Superconducting Phase in CeRh2As2

    Mayu Kibune1, Shunsaku Kitagawa1,*, Katsuki Kinjo1, Shiki Ogata1, Masahiro Manago1,†, Takanori Taniguchi1,‡, Kenji Ishida1, Manuel Brando2, Elena Hassinger2 et al.

    Helge Rosner2, Christoph Geibel2, and Seunghyun Khim2

    • 1Department of Physics, Kyoto University, Kyoto 606-8502, Japan
    • 2Max Planck Institute for Chemical Physics of Solids, D-01187 Dresden, Germany

    • *kitagawa.shunsaku.8u@kyoto-u.ac.jp
    • †Present address: Department of Physics and Materials Science, Graduate School of Natural Science and Technology, Shimane University, Matsue 690-8504, Japan.
    • ‡Present address: Institute for Materials Research, Tohoku University, Katahira, Sendai 980-8577, Japan.

    Phys. Rev. Lett. 128, 057002 – Published 3 February, 2022

    DOI: https://doi.org/10.1103/PhysRevLett.128.057002

    Abstract

    Spatial inversion symmetry in crystal structures is closely related to the superconducting (SC) and magnetic properties of materials. Recently, several theoretical proposals that predict various interesting phenomena caused by the breaking of the local inversion symmetry have been presented. However, experimental validation has not yet progressed owing to the lack of model materials. Here we present evidence for antiferromagnetic (AFM) order in CeRh2As2 (SC transition temperature TSC∼0.37  K), wherein the Ce site breaks the local inversion symmetry. The evidence is based on the observation of different extents of broadening of the nuclear quadrupole resonance spectrum at two crystallographically inequivalent As sites. This AFM ordering breaks the inversion symmetry of this system, resulting in the activation of an odd-parity magnetic multipole. Moreover, the onset of antiferromagnetism TN within an SC phase, with TN<TSC, is quite unusual in systems wherein superconductivity coexists or competes with magnetism. Our observations show that CeRh2As2 is a promising system to study how the absence of local inversion symmetry induces or influences unconventional magnetic and SC states, as well as their interaction.

    Physics Subject Headings (PhySH)

    See Also

    Possible Quadrupole Density Wave in the Superconducting Kondo Lattice CeRh2As2

    D. Hafner, P. Khanenko, E.-O. Eljaouhari, R. Küchler, J. Banda, N. Bannor, T. Lühmann, J. F. Landaeta, S. Mishra, I. Sheikin, E. Hassinger, S. Khim, C. Geibel, G. Zwicknagl, and M. Brando
    Phys. Rev. X 12, 011023 (2022)

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