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1.
ACS Nano ; 4(7): 3845-52, 2010 Jul 27.
Article in English | MEDLINE | ID: mdl-20586422

ABSTRACT

Refluxing graphene oxide (GO) in N-methyl-2-pyrrolidinone (NMP) results in deoxygenation and reduction to yield a stable colloidal dispersion. The solvothermal reduction is accompanied by a color change from light brown to black. Atomic force microscopy (AFM) and scanning electron microscopy (SEM) images of the product confirm the presence of single sheets of the solvothermally reduced graphene oxide (SRGO). X-ray photoelectron spectroscopy (XPS) of SRGO indicates a significant increase in intensity of the C=C bond character, while the oxygen content decreases markedly after the reduction is complete. X-ray diffraction analysis of SRGO shows a single broad peak at 26.24 degrees 2theta (3.4 A), confirming the presence of graphitic stacking of reduced sheets. SRGO sheets are redispersible in a variety of organic solvents, which may hold promise as an acceptor material for bulk heterojunction photovoltaic cells, or electromagnetic interference shielding applications.


Subject(s)
Carbon/chemistry , Organic Chemicals/chemistry , Oxides/chemistry , Solvents/chemistry , Temperature , Electric Conductivity , Hydrazines/chemistry , Microscopy, Electron, Scanning , Oxidation-Reduction , Photoelectron Spectroscopy , X-Ray Diffraction
3.
Nat Nanotechnol ; 3(2): 101-5, 2008 Feb.
Article in English | MEDLINE | ID: mdl-18654470

ABSTRACT

Graphene sheets offer extraordinary electronic, thermal and mechanical properties and are expected to find a variety of applications. A prerequisite for exploiting most proposed applications for graphene is the availability of processable graphene sheets in large quantities. The direct dispersion of hydrophobic graphite or graphene sheets in water without the assistance of dispersing agents has generally been considered to be an insurmountable challenge. Here we report that chemically converted graphene sheets obtained from graphite can readily form stable aqueous colloids through electrostatic stabilization. This discovery has enabled us to develop a facile approach to large-scale production of aqueous graphene dispersions without the need for polymeric or surfactant stabilizers. Our findings make it possible to process graphene materials using low-cost solution processing techniques, opening up enormous opportunities to use this unique carbon nanostructure for many technological applications.


Subject(s)
Carbon/chemistry , Crystallization/methods , Membranes, Artificial , Nanostructures/chemistry , Nanostructures/ultrastructure , Nanotechnology/methods , Water/chemistry , Colloids/chemistry , Macromolecular Substances/chemistry , Materials Testing , Molecular Conformation , Particle Size , Surface Properties
4.
Nano Lett ; 7(11): 3394-8, 2007 Nov.
Article in English | MEDLINE | ID: mdl-17944523

ABSTRACT

Oxidation of graphite produces graphite oxide, which is dispersible in water as individual platelets. After deposition onto Si/SiO2 substrates, chemical reduction produces graphene sheets. Electrical conductivity measurements indicate a 10000-fold increase in conductivity after chemical reduction to graphene. Tapping mode atomic force microscopy measurements show one to two layer graphene steps. Electrodes patterned onto a reduced graphite oxide film demonstrate a field effect response when the gate voltage is varied from +15 to -15 V. Temperature-dependent conductivity indicates that the graphene-like sheets exhibit semiconducting behavior.


Subject(s)
Graphite/chemistry , Nanotechnology/methods , Electric Conductivity , Electrodes , Equipment Design , Microscopy, Atomic Force , Nanostructures/chemistry , Oxides/chemistry , Semiconductors , Silicon/chemistry , Silicon Dioxide/chemistry , Surface Properties , Temperature
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