Polymer/Filler Interactions in Ethylene-Octene Copolymer Nanocomposites
Recent research published in the Polymer journal has investigated the microstructure and rheology of melt-compounded ethylene-octene copolymer (EOC) nanocomposites. The study focused on the use of functionalized matrices and nanosilica particles to enhance polymer/filler interactions. The researchers found that the type of silane grafting agent used and the type of silica particles employed significantly influenced the polymer/filler interactions and, consequently, the rheological properties of the composites. The study demonstrated the importance of strong polymer/filler interactions in achieving improved filler dispersion and stable rheological properties.
Key Takeaways:
- The functionalization of the EOC matrix via silane grafting resulted in enhanced polymer/filler interactions, leading to improved filler dispersion and stable rheological properties.
- The type of silane grafting agent used, either monofunctional (vinyltriethylsilane-VTES) or bifunctional (vinyltriethoxysilane VTEOS), significantly impacted the polymer/filler interactions.
- The presence of polymer/filler interactions was confirmed through bound polymer measurements and TEM micrographs.
- Rheological properties in the melt state revealed significant differences among the EOC-g-VTES, EOC-g-VTEOS, and oct-SiO2-based composites.
- Time-sweep experiments showed pronounced time-dependence indicative of a tendency toward aggregation for EOC-g-VTES-based composites, whereas strong polymer/filler interactions between EOC-g-VTEOS and oct-SiO2 resulted in a stable response.
- Strain-sweep experiments revealed a higher critical strain for the onset of non-linearity for EOC-g-VTEOS-based composites, indicative of stronger adhesion between the fillers and the matrix.
- DMA measurements showed that more energy is dissipated during the glass transition for composites with enhanced polymer/filler interactions.
Statistics:
- The study used two different types of silica particles: unmodified (SiO2) and modified with octylsilane (oct-SiO2).
- The researchers observed a fractal-like composite structure in the TEM micrographs.
- The composites exhibited significant differences in rheological properties, with pronounced time-dependence in EOC-g-VTES-based composites.
- The critical strain for the onset of non-linearity was higher for EOC-g-VTEOS-based composites than for EOC-g-VTES-based composites.
- DMA measurements showed an increase in energy dissipation during the glass transition for composites with enhanced polymer/filler interactions.
Sources:
- M. Bailly et al. "Effect of polymer/filler interactions on the structure and rheological properties of ethylene-octene copolymer/nanosilica composites." Polymer, 2010;51(23):5506-5515.
- Queen's University, Dept. of Chemical Engineering, Kingston, ON K7L 3N6, Canada.