Mechanism of thermal and electrical conductivity in polymer-nanocarbon composites
β Scribed by A. Lazarenko; L. Vovchenko; Y. Prylutskyy; L. Matzuy; U. Ritter; P. Scharff
- Publisher
- John Wiley and Sons
- Year
- 2009
- Tongue
- English
- Weight
- 121 KB
- Volume
- 40
- Category
- Article
- ISSN
- 0933-5137
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β¦ Synopsis
Abstract
The electrical and thermal conductivity of nanocarbon filled polymers were studied by adding nanocarbon fillers (thermoexfoliated graphite (TEG) and dispersed TEG (nanoTEG)) to epoxy resin (ED) or polyethylene oxide (PEO). The content of filler in composite materials (CM) was (0.5β10) wt%. The temperature range of the investigations was (77β300) K for electrical conductivity and (150β423) K for thermal conductivity, respectively. It was found that electrical conductivity of CM obeys percolation dependence with low critical concentration ~cr~βΌ(1β2) wt% (Ο~cr~βΌ(0.56β1.1) vol%) and characterised by a positive temperature coefficient. The thermal conductivity is approximately linear on nanocarbon content. The model describing the mechanisms of electrical and thermal conductivity of CM had been proposed. The basic parameters of this model are following: content of nanocarbon anisotropic particles and their distribution in polymer matrix; the contact thermal (electrical) resistance both between the filler particles and on the interface of two phases β polymerβcarbon filler.
π SIMILAR VOLUMES
Structural changes proceeding in composites under the effect of various mechanical deformations (stretching, compression, shear, etc.) affect the structure of an electrical conducting system. Mechanical stresses, induced by deformation of composite materials during deformation, affect both the molec