Effect of Monomer Type on the Synthesis and Properties of Poly(Ethylene Furanoate)

Author:

Stanley Johan1,Terzopoulou Zoi1ORCID,Klonos Panagiotis A.12ORCID,Zamboulis Alexandra1ORCID,Xanthopoulou Eleftheria3,Koltsakidis Savvas4,Tzetzis Dimitrios4ORCID,Zemljič Lidija Fras5,Lambropoulou Dimitra A.67,Kyritsis Apostolos2,Papageorgiou George Z.38ORCID,Bikiaris Dimitrios N.1ORCID

Affiliation:

1. Laboratory of Chemistry and Technology of Polymers and Colors, Department of Chemistry, Aristotle University of Thessaloniki, GR-541 24 Thessaloniki, Greece

2. Department of Physics, Zografou Campus, National Technical University of Athens, 15780 Athens, Greece

3. Department of Chemistry, University of Ioannina, GR-45110 Ioannina, Greece

4. Digital Manufacturing and Materials Characterization Laboratory, School of Science and Technology, International Hellenic University, 14 km Thessaloniki, 57001 N. Moudania, Greece

5. Faculty of Mechanical Engineering, University of Maribor, SI-2000 Maribor, Slovenia

6. Laboratory of Environmental Pollution Control, Department of Chemistry, Aristotle University of Thessaloniki, GR-541 24 Thessaloniki, Greece

7. Center for Interdisciplinary Research and Innovation (CIRI-AUTH), Balkan Center, GR-570 01 Thessaloniki, Greece

8. Institute of Materials Science and Computing, University Research Center of Ioannina (URCI), 45110 Ioannina, Greece

Abstract

This work aimed to produce bio-based poly(ethylene furanoate) (PEF) with a high molecular weight using 2,5-furan dicarboxylic acid (FDCA) or its derivative dimethyl 2,5-furan dicarboxylate (DMFD), targeting food packaging applications. The effect of monomer type, molar ratios, catalyst, polycondensation time, and temperature on synthesized samples’ intrinsic viscosities and color intensity was evaluated. It was found that FDCA is more effective than DMFD in producing PEF with higher molecular weight. A sum of complementary techniques was employed to study the structure–properties relationships of the prepared PEF samples, both in amorphous and semicrystalline states. The amorphous samples exhibited an increase in glass transition temperature of 82–87 °C, and annealed samples displayed a decrease in crystallinity with increasing intrinsic viscosity, as analyzed by differential scanning calorimetry and X-ray diffraction. Dielectric spectroscopy showed moderate local and segmental dynamics and high ionic conductivity for the 2,5-FDCA-based samples. The spherulite size and nuclei density of samples improved with increased melt crystallization and viscosity, respectively. The hydrophilicity and oxygen permeability of the samples were reduced with increased rigidity and molecular weight. The nanoindentation test showed that the hardness and elastic modulus of amorphous and annealed samples is higher at low viscosities due to high intermolecular interactions and degree of crystallinity.

Funder

FoodTraNet

Publisher

MDPI AG

Subject

Polymers and Plastics,General Chemistry

Reference55 articles.

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3. HDPE/Cu-Nanofiber Nanocomposites with Enhanced Antibacterial and Oxygen Barrier Properties Appropriate for Food Packaging Applications;Bikiaris;Mater. Lett.,2013

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5. Matos Fonseca, J., Koop, B.L., Trevisol, T.C., Capello, C., Monteiro, A.R., and Valencia, G.A. (2022). Nanotechnology-Enhanced Food Packaging, Wiley.

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