Mobility gap and quantum transport in functionalized graphene bilayer
Mesoscale and Nanoscale Physics
2018-09-05 v2 Materials Science
Abstract
In a Bernal graphene bilayer, carbon atoms belong to two inequivalent sublattices A and B, with atoms that are coupled to the other layer by bonds belonging to sublattice A and the other atoms belonging to sublattice B. We analyze the density of states and the conductivity of Bernal graphene bilayers when atoms of sublattice A or B only are randomly functionalized. We find that for a selective functionalization on sublattice B only, a mobility gap of the order of 0.5 eV is formed close to the Dirac energy at concentration of adatoms c > 0.01. In addition, at some other energies conductivity presents anomalous behaviors. We show that these properties are related to the bipartite structure of the graphene layer.
Cite
@article{arxiv.1712.00515,
title = {Mobility gap and quantum transport in functionalized graphene bilayer},
author = {Ahmed Missaoui and Jouda Jemaa Khabthani and Nejm-Eddine Jaidane and Didier Mayou and Guy Trambly de Laissardière},
journal= {arXiv preprint arXiv:1712.00515},
year = {2018}
}
Comments
9 pages, 3 figures