Mechanical and rheological response of polypropylene/boehmite nanocomposites

Author:

Pedrazzoli D1,Tuba F2,Khumalo VM34,Pegoretti A1,Karger-Kocsis J245

Affiliation:

1. Department of Industrial Engineering and INSTM Research Unit, University of Trento, Via Mesiano 77, Trento, Italy

2. Faculty of Mechanical Engineering, Department of Polymer Engineering, Budapest University of Technology and Economics, Budapest, Hungary

3. Polymers and Composites, Materials Science and Manufacturing, Council for Scientific and Industrial Research (CSIR), Pretoria, South Africa

4. Department of Polymer Technology, Faculty of Mechanical Engineering and Built Environment, Tshwane University of Technology, Pretoria, South Africa

5. MTA–BME Research Group for Composite Science and Technology, Műegyetem rkp 3, Budapest, Hungary

Abstract

In this study, the influence of synthetic boehmite alumina nanoparticles with various surface treatments on the morphology, crystallization behavior and mechanical properties of polypropylene copolymer nanocomposites was studied. In particular, a series of polypropylene/boehmite alumina nanocomposites, containing up to 10 wt% of untreated and of octylsilane-functionalized boehmite alumina nanoparticles, were prepared by melt compounding and film blowing. A third type of composite was produced by incorporation of boehmite alumina nanoparticles treated with benzene sulfonic acid. Scanning electron microscopy indicated that boehmite alumina nanoparticles were finely and uniformly dispersed, though agglomerated, in the polypropylene nanocomposites. Surface-treated boehmite alumina nanoparticles were better dispersed in the matrix than the untreated boehmite alumina nanocomposites. The melt viscosity of nanocomposites remained unaltered or decreased by nanofiller incorporation at low concentration (2.5 and 5 wt%), while it slightly increased at higher concentrations (10 wt%). Uniaxial tensile tests indicated that the nanoparticles can induce a remarkable stiffening effect even at a rather low filler content, especially in the case of surface-treated particles. The plane stress fracture toughness of the material, evaluated by the essential work of fracture approach, showed a noticeable improvement due to boehmite alumina incorporation, with an optimal effect for a filler concentration of about 2.5 wt%.

Publisher

SAGE Publications

Subject

Materials Chemistry,Polymers and Plastics,Mechanical Engineering,Mechanics of Materials,Ceramics and Composites

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