Topological phases in intercalated epitaxial graphene

ORAL

Abstract

Intercalation is one of the effective methods to functionally manipulate the electronic structure of epitaxial graphene. Here, using first-principles density functional theory calculations, we design 2D topological insulators in epitaxial graphene via intercalation. We find that the electronic band structure near the Fermi energy shows Dirac-cone type or quadratic band dispersion depending on the type of intercalants, and topologically nontrivial band gap opens due to the considerable strength of the spin-orbit coupling. Our results indicate that the intercalation is a promising way to realize topological phases in graphene, and could be important in future nano device applications of graphene.

*This work was supported by the U.S. Department of Energy (DOE), Office of Science, Basic Energy Sciences, Materials Sciences and Engineering Division. The research was performed at Ames Laboratory, which is operated for the U.S. DOE by Iowa State University under Contract No. DE-AC02-07CH11358.

Presenters

  • Cai-Zhuang Wang

    • Ames Laboratory
    • Physics, Iowa State University

Authors

  • Cai-Zhuang Wang

    • Ames Laboratory
    • Physics, Iowa State University
  • Minsung Kim

    • Ames Laboratory
  • Kai-Ming Ho

    • Ames Laboratory
    • Iowa State University
    • Department of Physics and Astronomy, Iowa State University