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Topological moiré minibands and correlated Chern insulator from periodically confined massive Dirac fermions

ORAL

Abstract

Strong electronic correlation in topological flat minibands renders moiré superlattices fascinating for accessing novel quantum states. Here we demonstrate a generic mechanism to realize topological flat minibands by confining massive Dirac fermions in a periodic moiré potential, which can be potentially realized in a heterobilayer of transition metal dichalcogenides. We show that the topological phase can be protected by the symmetry of moiré potential and survive to arbitrarily large Dirac band gap. We take the MoTe2/WSe2 heterobilayer as an example and find that the topological phase can be driven by a vertical electric field. By projecting the Coulomb interaction onto the topological fat minibands, we identify a correlated Chern insulator at half filling and a quantum valley-spin Hall insulator at full filling. Our work clarifies the importance of Dirac structure for the topological minibands and unveils a general strategy to design topological moiré materials.

Publication: Physical Review Research 4, L032024 (2022)

Presenters

  • Ying Su

    Los Alamos National Laboratory

Authors

  • Ying Su

    Los Alamos National Laboratory

  • Heqiu Li

    University of Toronto

  • Chuanwei Zhang

    University of Texas at Dallas

  • Kai Sun

    University of Michigan

  • Shizeng Lin

    Los Alamos National Laboratory, Los Alamos National Laboratory, New Mexico, USA, Los Alamos National Lab