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Growth of graphene on Ir(111)

New Journal of Physics · 2009 · Vol. 11(2) · pp. 023006–023006
Johann CorauxAlpha T. N’DiayeMartin EnglerCarsten BusseDirk WallNiemma M. BuckanieF.‐J. Meyer zu HeringdorfRaoul van GastelBene PoelsemaThomas Michely

Abstract

Catalytic decomposition of hydrocarbons on transition metals attracts a renewed interest as a route toward high-quality graphene prepared in a reproducible manner. Here we employ two growth methods for graphene on Ir(111), namely room temperature adsorption and thermal decomposition at 870–1470 K (temperature programmed growth (TPG)) as well as direct exposure of the hot substrate at 870–1320 K (chemical vapor deposition (CVD)). The temperature- and exposure-dependent growth of graphene is investigated in detail by scanning tunneling microscopy. TPG is found to yield compact graphene islands bounded by C zigzag edges. The island size may be tuned from a few to a couple of tens of nanometers through Smoluchowski ripening. In the CVD growth, the carbon in ethene molecules arriving on the Ir surface is found to convert with probability near unity to graphene. The temperature-dependent nucleation, interaction with steps and coalescence of graphene islands are analyzed and a consistent model for CVD growth is developed.

Graphene research and applicationsSurface and Thin Film PhenomenaQuantum and electron transport phenomenaGrapheneNucleationChemical vapor depositionCoalescence (physics)Scanning tunneling microscopePhysicsAdsorptionThermal decompositionGraphene nanoribbonsZigzag

Funding

  • Alexander von Humboldt-Stiftung
  • Deutsche Forschungsgemeinschaft
Citations
413
FWCI
16.97
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References
64
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100%
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References
Ultra-thin epitaxial films of graphite and hexagonal boron nitride on solid surfaces
Journal of Physics Condensed Matter · 1997 · 611 citations
The rise of graphene
Nature Materials · 2007 · 39,026 citations
Structure of epitaxial graphene on Ir(111)
New Journal of Physics · 2008 · 477 citations
The electronic properties of graphene
Reviews of Modern Physics · 2009 · 24,183 citations
Approaching ballistic transport in suspended graphene
Nature Nanotechnology · 2008 · 3,230 citations
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