Floquet-Engineered Topological Flat Bands in Irradiated Twisted Bilayer Graphene

ORAL

Abstract

We propose a tunable optical setup to engineer topologically nontrivial flat bands in twisted bilayer graphene under circularly polarized light. Using both analytical and numerical calculations, we demonstrate that nearly flat bands can be engineered at small twist angles near the magic angles of the static system. The flatness and the gaps between these bands can be tuned optically by varying laser frequency and amplitude. We study the effects of interlayer hopping variations on Floquet flat bands and find that lattice relaxation favors their formation. Furthermore, we find that, once formed, the flat bands carry nonzero Chern numbers. We show that at currently known values of parameters, such topological flat bands can be realized using circularly polarized UV laser light. Thus, our work opens the way to creating optically tunable, strongly correlated topological phases of electrons in moire superlattices.

*This work is supported in part by the NSF awards DMR-1350663, DMR-1506263, DMR-1914451, ECCS-1936406, US-Israel BSF grant No. 2016130, the Research Corporation Cottrell SEED Award, the Max-Planck Institute for the Physics of Complex Systems in Dresden, the Aspen Center for Physics via NSF grant PHY-1607611, and the College of Arts and Sciences at Indiana University.

Presenters

  • Yantao Li

    • Indiana Univ - Bloomington

Authors

  • Yantao Li

    • Indiana Univ - Bloomington
  • Herbert Fertig

    • Indiana Univ - Bloomington
    • Department of Physics, Indiana University - Bloomington
    • Physics, Indiana university Bloomington
  • Babak H Seradjeh

    • Indiana Univ - Bloomington