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Quantifying Defects in Graphene via Raman Spectroscopy at Different Excitation Energies

Nano Letters · 2011 · Vol. 11(8) · pp. 3190–3196
Luiz Gustavo CançadoAdo JórioErlon H. Martins FerreiraFernando StavaleCarlos A. AcheteRodrigo B. CapazMarcus V. O. MoutinhoAntonio LombardoTero S. KulmalaAndrea C. Ferrari

Abstract

We present a Raman study of Ar(+)-bombarded graphene samples with increasing ion doses. This allows us to have a controlled, increasing, amount of defects. We find that the ratio between the D and G peak intensities, for a given defect density, strongly depends on the laser excitation energy. We quantify this effect and present a simple equation for the determination of the point defect density in graphene via Raman spectroscopy for any visible excitation energy. We note that, for all excitations, the D to G intensity ratio reaches a maximum for an interdefect distance ∼3 nm. Thus, a given ratio could correspond to two different defect densities, above or below the maximum. The analysis of the G peak width and its dispersion with excitation energy solves this ambiguity.

Graphene research and applicationsDiamond and Carbon-based Materials ResearchIon-surface interactions and analysisExcitationRaman spectroscopyGrapheneSpectroscopyMaterials scienceAtomic physicsDispersion (optics)Molecular physicsIonLaser

Funding

  • Engineering and Physical Sciences Research Council
Citations
3,483
FWCI
58.70
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70
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100%
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References
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Physical review. B, Condensed matter · 2001 · 2,911 citations
Raman Spectrum of Graphite
The Journal of Chemical Physics · 1970 · 10,463 citations
Raman spectroscopy of hydrogenated amorphous carbons
Physical Review B · 2005 · 1,285 citations
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