Affiliation:
1. Department of Materials Technologies West Pomeranian University of Technology Al. Piastow 19 PL-70310 Szczecin Poland
2. Faculty of Materials Science and Engineering Warsaw University of Technology Woloska 141 05-507 Warszawa Poland
3. Institute of Lightweight Engineering and Polymer Technology Technische Universität Dresden 01307 Dresden Germany
4. Instituto de Estructura de la Materia IEM-CSIC Serrano 121 28006 Madrid Spain
Abstract
Bionanocomposites based on poly(trimethylene 2,5‐furandicarboxylate)‐block‐poly(tetramethylene oxide) (PTF‐b‐F‐PTMO) with various contents of carbon nanofibers, graphene nanoplatelets and a hybrid system of these nanoparticles are synthesized via in situ polymerization. The dispersion of nanoparticles in the nanocomposites is determined using a scanning electron microscope and optical microscopy images. The thermal properties are studied employing differential scanning calorimetry, dynamic mechanical thermal analysis, and thermogravimetric analysis. The melt viscosity of the synthesized materials is determined using rheological measurements. Mechanical properties, along with the thermal and electrical conductivity, are also analyzed. The synthesized polymer nanocomposites are processed using injection molding and they display mechanical properties of elastomers during mechanical testing, which indicates that the obtained materials are, in fact, thermoplastic elastomers (TPE). Compared to a neat matrix (PTF‐b‐F‐PTMO 50/50), the incorporation of nanoparticles causes an increase in the value of the degree of crystallinity and the value of the tensile modulus values (E) of the nanocomposites. Such reinforced bionanocomposites are especially interesting from an applicative point of view. They can be used as components of fuel systems, bumpers, or cupholders.
Subject
Condensed Matter Physics,General Materials Science
Cited by
3 articles.
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