English

Ballistic electron channels including weakly protected topological states in delaminated bilayer graphene

Mesoscale and Nanoscale Physics 2018-01-18 v1

Abstract

We show that delaminations in bilayer graphene (BLG) with electrostatically induced interlayer asymmetry can provide one with ballistic channels for electrons with energies inside the electrostatically induced BLG gap. These channels are formed by a combination of valley-polarised evanescent states propagating along the delamination edges (which persist in the presence of a strong magnetic field) and standing waves bouncing between them inside the delaminated region (in a strong magnetic field, these transform into Landau levels in the monolayers). For inverted stacking between BLGs on the left and right of the delamination (AB-2ML-BA or BA-2ML-AB), the lowest energy ballistic channels are gapless, have linear dispersion and appear to be weakly topologically protected. When BLG stacking order on both sides of the delamination is the same (AB-2ML-AB or BA-2ML-BA), the lowest energy ballistic channels are gapped, with gap εg\varepsilon_g scaling as εgW1\varepsilon_g\propto W^{-1} with delamination width and as εgδ1\varepsilon_g\propto\delta^{-1} with the on-layer energy difference within the delamination. Depending on their width, delaminations may also support several `higher energy' waveguide modes. Our results are based on both an analytical study of the wavematching of Dirac states and tight binding model calculations, and we analyse in detail the dependence of the delamination spectrum on electrostatic conditions in the structure, such as the vertical displacement field.

Keywords

Cite

@article{arxiv.1801.03322,
  title  = {Ballistic electron channels including weakly protected topological states in delaminated bilayer graphene},
  author = {T. L. M. Lane and M. Anđelković and J. R. Wallbank and L. Covaci and F. M. Peeters and V. I. Fal'ko},
  journal= {arXiv preprint arXiv:1801.03322},
  year   = {2018}
}

Comments

12 pages, 9 figures