Maximally Localized Wannier Orbitals and the Extended Hubbard Model for Twisted Bilayer Graphene

ORAL

Abstract

We develop an effective extended Hubbard model to describe the low-energy electronic properties of the twisted bilayer graphene. By using the Bloch states in the effective continuum model and with the aid of the maximally localized algorithm, we construct the Wannier orbitals and obtain an effective tight-binding model on the emergent honeycomb lattice. We find that the Wannier state takes a peculiar three-peak form in which the amplitude maxima are located at the triangle corners surrounding the center. We estimate the direct Coulomb interaction and the exchange interaction between the Wannier states. At the filling of two electrons per supercell, we find an unexpected coincidence in the direct Coulomb energy between a charge-ordered state and a homogeneous state, which could possibly lead to an unconventional many-body state.

Presenters

  • Mikito Koshino

    Osaka University, Department of Physics, Osaka University, Physics, Osaka University, Department of Physics, Osaka University, Japan

Authors

  • Mikito Koshino

    Osaka University, Department of Physics, Osaka University, Physics, Osaka University, Department of Physics, Osaka University, Japan

  • Noah Yuan

    MIT, Massachusetts Institute of Technology

  • Takashi Koretsune

    Tohoku University

  • Masayuki Ochi

    Department of Physics, Osaka University, Osaka University

  • Kazuhiko Kuroki

    Department of Physics, Osaka University, Osaka University

  • Liang Fu

    Massachusetts Institute of Technology, MIT, Department of Physics, Massachusetts Institute of Technology