Scinovex
articleTop 1% cited

Electronic Structure and Stability of Semiconducting Graphene Nanoribbons

Nano Letters · 2006 · Vol. 6(12) · pp. 2748–2754
Verónica BaroneOded HodGustavo E. Scuseria

Abstract

We present a systematic density functional theory study of the electronic properties, optical spectra, and relative thermodynamic stability of semiconducting graphene nanoribbons. We consider ribbons with different edge nature including bare and hydrogen-terminated ribbons, several crystallographic orientations, and widths up to 3 nm. Our results can be extrapolated to wider ribbons providing a qualitative way of determining the electronic properties of ribbons with widths of practical significance. We predict that in order to produce materials with band gaps similar to Ge or InN, the width of the ribbons must be between 2 and 3 nm. If larger bang gap ribbons are needed (like Si, InP, or GaAs), their width must be reduced to 1-2 nm. According to the extrapolated inverse power law obtained in this work, armchair carbon nanoribbons of widths larger than 8 nm will present a maximum band gap of 0.3 eV, while for ribbons with a width of 80 nm the maximum possible band gap is 0.05 eV. For chiral nanoribbons the band gap oscillations rapidly vanish as a function of the chiral angle indicating that a careful design of their crystallographic nature is an essential ingredient for controlling their electronic properties. Optical excitations show important differences between ribbons with and without hydrogen termination and are found to be sensitive to the carbon nanoribbon width. This should provide a practical way of revealing information on their size and the nature of their edges.

Graphene research and applicationsCarbon Nanotubes in CompositesFullerene Chemistry and ApplicationsBand gapMaterials scienceGraphene nanoribbonsCondensed matter physicsElectronic structureGrapheneDensity functional theoryOptoelectronicsNanotechnologyComputational chemistry
Citations
1,663
FWCI
42.12
field-weighted impact
References
30
Percentile
100%
vs. same field & year
Citations per year
Cited by
Chemical doping of graphene
Journal of Materials Chemistry · 2010 · 1,612 citations
Accurate treatment of solids with the HSE screened hybrid
physica status solidi (b) · 2010 · 327 citations
The chemistry of graphene
Journal of Materials Chemistry · 2010 · 1,426 citations
The growth and morphology of epitaxial multilayer graphene
Journal of Physics Condensed Matter · 2008 · 852 citations
References
C60: Buckminsterfullerene
Nature · 1985 · 15,775 citations
Generalized Gradient Approximation Made Simple
Physical Review Letters · 1996 · 205,888 citations
Single-shell carbon nanotubes of 1-nm diameter
Nature · 1993 · 8,859 citations
Hybrid functionals based on a screened Coulomb potential
The Journal of Chemical Physics · 2003 · 18,689 citations
Citation Network

How this paper connects to the literature. Drag to explore, click any node to open that paper.

Electronic Structure and Stability of Semiconducting Graphene Nanoribbons · Scinovex