Velocity renormalization and Dirac cone multiplication in graphene superlattices with various barrier-edge geometries

A. de Jamblinne de Meux, N. Leconte, J.-C. Charlier, and A. Lherbier
Phys. Rev. B 91, 235139 – Published 23 June 2015

Abstract

The electronic properties of one-dimensional graphene superlattices strongly depend on the atomic size and orientation of the 1D external periodic potential. Using a tight-binding approach, we show that the armchair and zigzag directions in these superlattices have a different impact on the renormalization of the anisotropic velocity of the charge carriers. For symmetric potential barriers, the velocity perpendicular to the barrier is modified for the armchair direction while remaining unchanged in the zigzag case. For asymmetric barriers, the initial symmetry between the forward and backward momentum with respect to the Dirac cone symmetry is broken for the velocity perpendicular (armchair case) or parallel (zigzag case) to the barriers. At last, Dirac cone multiplication at the charge neutrality point occurs only for the zigzag geometry. In contrast, band gaps appear in the electronic structure of the graphene superlattice with barrier in the armchair direction.

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  • Received 11 November 2014
  • Revised 31 May 2015

DOI:https://doi.org/10.1103/PhysRevB.91.235139

©2015 American Physical Society

Authors & Affiliations

A. de Jamblinne de Meux1, N. Leconte1,2, J.-C. Charlier1, and A. Lherbier1

  • 1Institute of Condensed Matter and Nanosciences (IMCN), Université catholique de Louvain (UCL), Chemin des étoiles 8, B-1348 Louvain-la-Neuve, Belgium
  • 2ICN2 - Institut Catala de Nanociencia i Nanotecnologia, Campus UAB, 08193 Bellaterra (Barcelona), Spain

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Issue

Vol. 91, Iss. 23 — 15 June 2015

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