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Physical vapor deposition of metal nanoparticles on chemically modified graphene : observations on metal-graphene interactions

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Pandey, Priyanka A., Bell, Gavin R., Rourke, Jonathan, Sánchez, Ana M., Elkin, Mark D., Hickey, Bryan J. and Wilson, Neil R. (2011) Physical vapor deposition of metal nanoparticles on chemically modified graphene : observations on metal-graphene interactions. Small, Vol.7 (No.22). pp. 3202-3210. doi:10.1002/smll.201101430

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Official URL: http://dx.doi.org/10.1002/smll.201101430

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Abstract

The growth of metallic nanoparticles formed on chemically modified graphene (CMG) by physical vapor deposition is investigated. Fine control over the size (down to ∼1.5 nm for Au) and coverage (up to 5 × 104 μm−2 for Au) of nanoparticles can be achieved. Analysis of the particle size distributions gives evidence for Au nanocluster diffusion at room temperature, while particle size statistics differ clearly between metal deposited on single- and multilayer regions. The morphology of the nanoparticles varies markedly for different metals (Ag, Au, Fe, Pd, Pt, Ti), from a uniform thin film for Ti to a droplet-like growth for Ag. A simple model explains these morphologies, based only on consideration of 1) the different energy barriers to surface diffusion of metal adatoms on graphene, and 2) the ratio of the bulk cohesive energy of the metal to the metal–graphene binding energy. Understanding these interactions is important for controlling nanoparticle and thin-film growth on graphene, and for understanding the resultant charge transfer between metal and graphene.

Item Type: Journal Article
Subjects: Q Science > QC Physics
Divisions: Faculty of Science > Physics
Library of Congress Subject Headings (LCSH): Physical vapor deposition, Nanoparticles, Graphene
Journal or Publication Title: Small
Publisher: Wiley - V C H Verlag GmbH & Co. KGaA
ISSN: 1613-6810
Official Date: 18 November 2011
Dates:
DateEvent
18 November 2011Published
Volume: Vol.7
Number: No.22
Page Range: pp. 3202-3210
DOI: 10.1002/smll.201101430
Status: Peer Reviewed
Publication Status: Published
Access rights to Published version: Restricted or Subscription Access

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