English

Engineering a robust quantum spin Hall state in graphene via adatom deposition

Mesoscale and Nanoscale Physics 2015-03-19 v2 Materials Science

Abstract

The 2007 discovery of quantized conductance in HgTe quantum wells delivered the field of topological insulators (TIs) its first experimental confirmation. While many three-dimensional TIs have since been identified, HgTe remains the only known two-dimensional system in this class. Difficulty fabricating HgTe quantum wells has, moreover, hampered their widespread use. With the goal of breaking this logjam we provide a blueprint for stabilizing a robust TI state in a more readily available two-dimensional material---graphene. Using symmetry arguments, density functional theory, and tight-binding simulations, we predict that graphene endowed with certain heavy adatoms realizes a TI with substantial band gap. For indium and thallium, our most promising adatom candidates, a modest 6% coverage produces an estimated gap near 80K and 240K, respectively, which should be detectable in transport or spectroscopic measurements. Engineering such a robust topological phase in graphene could pave the way for a new generation of devices for spintronics, ultra-low-dissipation electronics and quantum information processing.

Keywords

Cite

@article{arxiv.1104.3282,
  title  = {Engineering a robust quantum spin Hall state in graphene via adatom deposition},
  author = {Conan Weeks and Jun Hu and Jason Alicea and Marcel Franz and Ruqian Wu},
  journal= {arXiv preprint arXiv:1104.3282},
  year   = {2015}
}

Comments

14 pages, 7 figures

R2 v1 2026-06-21T17:55:08.765Z