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Anomalous electrons in a metallic kagome ferromagnet

Author

Listed:
  • Sandy Adhitia Ekahana

    (Paul Scherrer Institute)

  • Y. Soh

    (Paul Scherrer Institute)

  • Anna Tamai

    (University of Geneva)

  • Daniel Gosálbez-Martínez

    (École Polytechnique Fédérale de Lausanne (EPFL)
    École Polytechnique Fédérale de Lausanne (EPFL)
    Universidad de Alicante
    Universidad de Alicante)

  • Mengyu Yao

    (Paul Scherrer Institute
    Max Planck Institute for Chemical Physics of Solids)

  • Andrew Hunter

    (University of Geneva)

  • Wenhui Fan

    (Chinese Academy of Sciences
    University of Chinese Academy of Sciences)

  • Yihao Wang

    (High Magnetic Field Laboratory of the Chinese Academy of Sciences)

  • Junbo Li

    (High Magnetic Field Laboratory of the Chinese Academy of Sciences)

  • Armin Kleibert

    (Paul Scherrer Institute)

  • C. A. F. Vaz

    (Paul Scherrer Institute)

  • Junzhang Ma

    (Paul Scherrer Institute
    City University of Hong Kong)

  • Hyungjun Lee

    (École Polytechnique Fédérale de Lausanne (EPFL))

  • Yimin Xiong

    (High Magnetic Field Laboratory of the Chinese Academy of Sciences
    Anhui University
    Hefei National Laboratory)

  • Oleg V. Yazyev

    (École Polytechnique Fédérale de Lausanne (EPFL)
    École Polytechnique Fédérale de Lausanne (EPFL))

  • Felix Baumberger

    (Paul Scherrer Institute
    University of Geneva)

  • Ming Shi

    (Paul Scherrer Institute
    Center for Correlated Matter and School of Physics, Zhejiang University)

  • G. Aeppli

    (Paul Scherrer Institute
    École Polytechnique Fédérale de Lausanne (EPFL)
    Eidgenössische Technische Hochschule Zürich (ETH Zürich)
    Eidgenössische Technische Hochschule Zürich (ETH Zürich))

Abstract

Ordinary metals contain electron liquids within well-defined ‘Fermi’ surfaces at which the electrons behave as if they were non-interacting. In the absence of transitions to entirely new phases such as insulators or superconductors, interactions between electrons induce scattering that is quadratic in the deviation of the binding energy from the Fermi level. A long-standing puzzle is that certain materials do not fit this ‘Fermi liquid’ description. A common feature is strong interactions between electrons relative to their kinetic energies. One route to this regime is special lattices to reduce the electron kinetic energies. Twisted bilayer graphene1–4 is an example, and trihexagonal tiling lattices (triangular ‘kagome’), with all corner sites removed on a 2 × 2 superlattice, can also host narrow electron bands5 for which interaction effects would be enhanced. Here we describe spectroscopy revealing non-Fermi-liquid behaviour for the ferromagnetic kagome metal Fe3Sn2 (ref. 6). We discover three C3-symmetric electron pockets at the Brillouin zone centre, two of which are expected from density functional theory. The third and most sharply defined band emerges at low temperatures and binding energies by means of fractionalization of one of the other two, most likely on the account of enhanced electron–electron interactions owing to a flat band predicted to lie just above the Fermi level. Our discovery opens the topic of how such many-body physics involving flat bands7,8 could differ depending on whether they arise from lattice geometry or from strongly localized atomic orbitals9,10.

Suggested Citation

  • Sandy Adhitia Ekahana & Y. Soh & Anna Tamai & Daniel Gosálbez-Martínez & Mengyu Yao & Andrew Hunter & Wenhui Fan & Yihao Wang & Junbo Li & Armin Kleibert & C. A. F. Vaz & Junzhang Ma & Hyungjun Lee & , 2024. "Anomalous electrons in a metallic kagome ferromagnet," Nature, Nature, vol. 627(8002), pages 67-72, March.
  • Handle: RePEc:nat:nature:v:627:y:2024:i:8002:d:10.1038_s41586-024-07085-w
    DOI: 10.1038/s41586-024-07085-w
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    Cited by:

    1. Lei Chen & Fang Xie & Shouvik Sur & Haoyu Hu & Silke Paschen & Jennifer Cano & Qimiao Si, 2024. "Emergent flat band and topological Kondo semimetal driven by orbital-selective correlations," Nature Communications, Nature, vol. 15(1), pages 1-7, December.

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