Article ID Journal Published Year Pages File Type
1493194 Optical Materials 2016 9 Pages PDF
Abstract

•The effect of RGO and MWCNTs on optical and electrical properties of PVA based composite was investigated.•The change in the Seebeck coefficient sign is noticed after thermal reduction of GO.•Thermally reduced GO could build a continuous electrically conductive network in a PVA matrix.•PL enhancement followed with a PL quenching at higher concentration 1.6 wt% TRGO and 1 wt% MWCNTs.•TRGO based composite shows 80% transmittance for 550 nm light.

Graphene and multi-walled carbon nanotubes have attracted interest for a number of potential applications. One of the most actively pursued applications uses graphene and carbon nanotubes as a transparent conducting electrode in solar cells, displays or touch screens. In this work, in situ reduced graphene oxide/Poly (vinyl alcohol) and multi-walled carbon nanotubes/Sodium Dodecyl Sulfate/Poly (vinyl alcohol) composites were prepared by water dispersion and different reduction treatments. Comparative studies were conducted to explore the electrical and optical properties of nanocomposites based on graphene and multi-walled carbon nanotubes. A thermal reduction of graphene oxide was more effective, producing films with sheet resistances as low as 102–103 Ω/square with 80% transmittance for 550 nm light. The percolation threshold of the thermally reduced graphene oxide composites (0.35 vol%) was much lower than that of the chemically reduced graphene oxide composites (0.57 vol%), and than that of the carbon nanotubes composites (0.47 vol%). The Seebeck coefficient of graphene oxide films changes from about 40 μV/K to −30 μV/K after an annealing of three hours at 200 °C. The optical absorption of the nanocomposites showed a high absorbance in near UV regions and the photoluminescence enhancement was achieved at 1 wt% graphene loading, while the carbon nanotubes based composite presents a significant emission at 0.7 wt% followed with a photoluminescence quenching at higher fraction of the nanofillers 1.6 wt% TRGO and 1 wt% MWCNTs.

Related Topics
Physical Sciences and Engineering Materials Science Ceramics and Composites
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