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Maximizing anomalous Hall effect by tuning the Fermi level in simple Weyl semimetal EuCd<sub>2</sub>Sb<sub>2</sub>

ORAL

Abstract

Magnetic Weyl semimetal EuCd2Sb2 provides an ideal platform for demonstrating and utilizing intrinsic anomalous Hall effect originating in the Weyl nodes. This is because EuCd2Sb2 in the forced ferromagnetic state hosts a simple Weyl-node-related band structure near the Fermi energy. Here we report growth of EuCd2Sb2 single-crystalline films by molecular beam epitaxy and observation of large anomalous Hall effect dependent on the carrier density. By approaching the Fermi level to Weyl node energy positions with controlling growth conditions and applying electrostatic gating, the anomalous Hall angle is largely enhanced as compared to previously reported EuCd2Sb2 single-crystalline bulk one. As also confirmed by first-principles calculations of intrinsic anomalous Hall conductivity, the observed anomalous Hall effect shows a sharp peak as a function of the carrier density, revealing clear energy dependence of the Weyl-node-based anomalous Hall effect. Our present work paves the way for further exploring the potential of Weyl-node-based exotic magnetotransport using film techniques.

Publication: M. Ohno et al., Physical Review B 105, L201101 (2022)

Presenters

  • Masaki Uchida

    Tokyo Institute of Technology

Authors

  • Masaki Uchida

    Tokyo Institute of Technology

  • Mizuki Ohno

    the University of Tokyo

  • Susumu Minami

    Kanazawa Univ, Univ of Tokyo, the University of Tokyo

  • Yusuke Nakazawa

    the University of Tokyo

  • Shin Sato

    the University of Tokyo

  • Markus Kriener

    RIKEN, RIKEN CEMS

  • Ryotaro Arita

    The University of Tokyo, Univ of Tokyo, Univ of Tokyo, RIKEN CEMS, University of Tokyo, the University of Tokyo

  • Masashi Kawasaki

    University of Tokyo, the University of Tokyo