Physical Review B · 2011 · 16 citations · 20 references
Materials ScienceQuantum ScienceGraphene NanomeshesGraphene Quantum DotEngineeringNanoribbon Band GapPhysicsNanoelectronicsApplied PhysicsCondensed Matter PhysicsGrapheneDynamical Gap GenerationGraphene NanoribbonsExperimental Band GapGraphene NanoribbonGraphene Band Gap
We show that the assumption of a nontrivial zero band gap for a graphene sheet within an effective relativistic field theoretical model description of interacting Dirac electrons on the surface of graphene describes the experimental band gap of graphene nanoribbons for a wide range of widths. The graphene band gap is dynamically generated, corresponding to a nontrivial gapless solution, found in the limit of an infinitely wide graphene ribbon. The nanoribbon band gap is determined by the experimental graphene work function.
20
Generalized Gradient Approximation Made Simple
John P. Perdew, Kieron Burke, Matthias Ernzerhof · Physical Review Letters · 1996 · 203.9K citations · Full text
Electric Field Effect in Atomically Thin Carbon Films
Kostya S. Novoselov, A. K. Geǐm, Da Jiang et al. · Science · 2004 · 65.1K citations · Full text
Self-Consistent Equations Including Exchange and Correlation Effects
W. Kohn, L. J. Sham · Physical Review · 1965 · 61.8K citations · Full text
A. K. Geǐm, Kostya S. Novoselov · Nature Materials · 2007 · 38.9K citations
Materials Science, Graphene-based Nano-antennas, Engineering +5
The electronic properties of graphene
A. H. Castro Neto, F. Guinea, N. M. R. Peres et al. · Reviews of Modern Physics · 2009 · 24.1K citations · Full text