Author | dc.contributor.author | Palza Cordero, Humberto | |
Author | dc.contributor.author | Vergara, R. | es_CL |
Author | dc.contributor.author | Zapata, P. | es_CL |
Admission date | dc.date.accessioned | 2011-11-29T14:56:22Z | |
Available date | dc.date.available | 2011-11-29T14:56:22Z | |
Publication date | dc.date.issued | 2011 | |
Cita de ítem | dc.identifier.citation | Composites Science and Technology 71 (2011) 535–540 | es_CL |
Identifier | dc.identifier.other | doi:10.1016/j.compscitech.2011.01.002 | |
Identifier | dc.identifier.uri | https://repositorio.uchile.cl/handle/2250/125549 | |
General note | dc.description | Artículo de publicación ISI | es_CL |
Abstract | dc.description.abstract | Spherical and layered silica nanoparticles synthesized by the sol–gel method were melt blended with a
polypropylene matrix in order to quantify their effect on thermal and mechanical behaviours of the
resulting polymer composites. Transmission electron microscopy images showed that spherical nanoparticles
were dispersed in the polymer matrix whereas layered particles display tactoid and agglomerated
structures. By thermogravimetric analysis, it was observed that independent of the particle aspect ratio,
the nanofillers render larger thermal degradation stabilization to the polymer matrix under oxidative
conditions than under inert atmosphere. Noteworthy, the largest improvements were found by using
spherical nanoparticles in presence of a compatibilizer. These results allow the conclusion that the physical/
chemical adsorption of the volatile products on the particle surface during the oxidative degradation
is the plausible mechanism behind the thermal stabilization. Tensile stress–strain tests otherwise
showed that composites with spherical nanoparticles can display similar or even larger elastic modulus
than composites with layered particles showing that the polymer/particle entanglement could be the
mechanism for the load transfer in these nanocomposites. | es_CL |
Patrocinador | dc.description.sponsorship | CONICYT, projects FONDECYT INICIACION EN INVESTIGACION
11075001 and FONDECYT 1100058. | es_CL |
Lenguage | dc.language.iso | en | es_CL |
Publisher | dc.publisher | Elsevier | es_CL |
Keywords | dc.subject | A. Polymer–matrix composites (PMCs) | es_CL |
Título | dc.title | Composites of polypropylene melt blended with synthesized silica nanoparticles | es_CL |
Document type | dc.type | Artículo de revista | |