Quantum Anomalous Hall Effect in Two-dimensional Organic Mn<sub>2</sub>L<sub>3</sub> Lattice

ORAL

Abstract

Using first-principles calculations, we predict the existence of nontrivial topological states in a monolayer metal-organic framework Mn2L3 (L = C6O4Cl2), which has been experimentally synthesized. A band gap of 7.8 meV at the Dirac point near the Fermi level is opened by spin-orbital coupling, with the attributes of C and O p-orbitals mediated by Mn d-orbitals. We further construct a tight-binding model to characterize the nonzero Chern number and edge states within the Dirac gap, confirming its nontrivial topological properties. Our results suggest that Mn2L3 could provide an organic platform for developing low-energy-consumption spintronics devices based on the quantum anomalous Hall effect.

*We acknowledge the financial support from DOE-BES (No. DE-FG02-04ER46148).

Presenters

  • X. Ni

    • University of Utah

Authors

  • X. Ni

    • University of Utah
  • Wei Jiang

    • University of Utah
  • Huaqing Huang

    • Univ of Utah
    • Department of Materials Science and Engineering, Univ of Utah
    • University of Utah
  • Kyung-Hwan Jin

    • Univ of Utah
    • University of Utah
    • Department of Materials Science and Engineering, Univ of Utah
  • Feng Liu

    • University of Utah
    • Univ of Utah
    • Department of Materials Science and Engineering, Univ of Utah
    • Department of Materials Science and Engineering, University of Utah