A magnetic Weyl semimetallic phase in (111) oriented thin films of Eu<sub>2</sub>Ir<sub>2</sub>O<sub>7</sub>

ORAL

Abstract

The interplay between electronic interactions and strong spin-orbit coupling is expected to create a plethora of fascinating correlated topological states of quantum matter. Of particular interest are magnetic Weyl semimetals originally proposed in the pyrochlore iridates, which are only expected to reveal their topological nature in thin film form. To date, however, direct experimental demonstrations of these exotic phases remain elusive, due to the lack of usable single crystals and the insufficient quality of available films. Here, we report on the discovery of the long-sought magnetic Weyl semi-metallic phase in (111)-oriented Eu2Ir2O7 high-quality epitaxial thin films. The topological magnetic state shows an intrinsic anomalous Hall effect with colossal coercivity but vanishing net magnetization, which emerges below the onset of a peculiar magnetic phase with all-in-all-out antiferromagnetic ordering. The observed anomalous Hall conductivity arises from the non-zero Berry curvature emanated by Weyl node pairs near the Fermi level that act as sources and sinks of Berry flux, activated by broken cubic crystal symmetry at the top and bottom terminations of the thin film. In addition, we report on the oberavtion of chiral anomaly which is another landmark of Weyl fermions.

*Acknowledge the support by the Gordon and Betty Moore Foundation EPiQS Initiative through Grant No. GBMF4534 and DOE BES under award DE-SC0022160.

Publication: 1. Xiaoran Liu et. al., A magnetic Weyl semimetallic phase in thin films of Eu2Ir2O7. arXiv:2106.04062 [cond-mat.str-el].
2. Xiaoran Liu et. al., In-situ fabrication and transport properties of (111) Y2Ir2O7 epitaxial thin film, Appl. Phys. Lett. 117, 041903 (2020); https://doi.org/10.1063/5.0019876.
3. Jak Chakhalian, Xiaoran Liu and Gregory A. Fiete, Strongly correlated and topological states in [111] grown transition metal oxide thin films and heterostructures, APL Mater. 8, 050904 (2020); https://doi.org/10.1063/5.0009092.

Presenters

  • Jak Chakhalian

    • Rutgers University
    • Rutgers

Authors

  • Jak Chakhalian

    • Rutgers University
    • Rutgers
  • Xiaoran Liu

    • Rutgers University, New Brunswick
  • Weida Wu

    • Rutgers University
    • Rutgers University, New Brunswick
  • Daniel Haskel

    • Argonne National Laboratory
  • John W Freeland

    • Argonne National Laboratory
  • Philip J Ryan

    • Argonne National Laboratory
  • Gilberto F Fabbris

    • Argonne National Laboratory
  • Justin Wilson

    • Rutgers University
  • Fangdi Wen

    • Rutgers University
  • Lin Gu

    • IOP CAS, China
  • Evguenia Karapetrova

    • Argonne National Laboratory
    • Argonne National Lab
    • Advanced Photon Source, Argonne National Laboratory
    • Argonne Nationa Lab
  • Jong-Woo Kim

    • Argonne National Laboratory
    • Argonne National Lab
  • Mikhail S Kareev

    • Rutgers University, New Brunswick
    • Rutgers University
  • Wenbo Ge

    • Rutgers University
  • Shiang Fang

    • Rutgers University, New Brunswick
    • Massachusetts Institute of Technology
  • Jed Pixley

    • Rutgers University