Background
Type: Article

Fabrication of single wall carbon nanotubes-based poly(vinyl butyral) nanocomposites with enhanced mechanical and thermal properties

Journal: Journal of Macromolecular Science, Part A: Pure and Applied Chemistry (15205738)Year: 2014/04/03Volume: Issue: 4
Zanjanijam A.R.Hajian M.Koohmareh G.a
DOI:10.1080/10601325.2014.882703Language: English

Abstract

In this research, poly(vinyl butyral) (PVB)/single wall carbon nanotubes (SWCNT) composites were prepared via solution blending method. Dispersion degree of SWCNT in the composites was characterized by Scanning Electron Microscopy (SEM) and mechanical properties were measured with tensile testing. Thermal degradation of composites was investigated using thermogravimetric analysis (TGA) and differential scanning calorimetry (DSC). SEM analysis confirmed good dispersion of the nanotubes in the PVB. The tensile tests showed significant increases in mechanical properties such as exceptional improvement in tensile strength, Young's modulus and flexibility for the composites compared to PVB at low SWCNT content.The TGA curves indicated that adding SWCNT improved the thermal stability of the PVB significantly and the degradation of the polymer matrix shifted to the higher temperatures. For the sample containing 0.6 wt%, an increase of 171% in modulus and a 258.4% enhancement of tensile strength were achieved. Also, elongation at break increased 28.7% at this loading. In fact, intrinsic properties of nanotubes caused enhancement of strength and flexibility simultaneously. Also, for this composite, Tonset and Tmax enhanced remarkably and weight loss reduced greatly and residue at 600°C increased to high values. These results are promising for application of the PVB in industry. © 2014 Copyright Taylor & Francis Group, LLC.


Author Keywords

(Poly)vinylbutyralCarbon nanotubesMechanical propertiesNanocompositeThermal propertiesBlendingCarbon nanotubesDifferential scanning calorimetryDispersionsElastic moduliMechanical propertiesNanocompositesScanning electron microscopyTensile strengthTensile testingThermodynamic properties