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Covalent polymer functionalization of graphene nanosheets and mechanical properties of composites

Journal of Materials Chemistry · 2009 · Vol. 19(38) · pp. 7098–7098
Ming FangKaigang WangHongbin LuYuliang YangSteven Nutt

Abstract

For developing high performance graphene-based nanocomposites, dispersal of graphene nanosheets in polymer hosts and precise interface control are challenging due to their strong interlayer cohesive energy and surface inertia. Here we report an efficient method to functionalize graphene nanosheets. The initiator molecules were covalently bonded to the graphene surface via a diazonium addition and the succeeding atom transfer radical polymerization linked polystyrene chains (82 wt% grafting efficiency) to the graphene nanosheets. The prominent confinement effect arising from nanosheets resulted in a 15 °C increase in the glass transition temperature of polystyrene compared to the pure polymer. The resulting polystyrene nanocomposites with 0.9 wt% graphene nanosheets revealed around 70% and 57% increases in tensile strength and Young's modulus. The protocol is believed to offer possibilities for optimizing the processing properties and interface structure of graphene-polymer nanocomposites.

Graphene research and applicationsGraphene and Nanomaterials ApplicationsDiamond and Carbon-based Materials ResearchGrapheneMaterials sciencePolystyreneSurface modificationPolymerAtom-transfer radical-polymerizationNanocompositeCovalent bondPolymer nanocompositeGlass transition
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References
The rise of graphene
Nature Materials · 2007 · 39,026 citations
Chemical methods for the production of graphenes
Nature Nanotechnology · 2009 · 6,588 citations
Graphene Oxide Dispersions in Organic Solvents
Langmuir · 2008 · 2,761 citations
Polymer Nanocomposites Containing Carbon Nanotubes
Macromolecules · 2006 · 3,386 citations
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