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Study on the synthetic characteristics of biomass-derived isosorbide-based poly(arylene ether ketone)s for sustainable super engineering plastic

  • Seul A. Park
  • , Changgyu Im
  • , Dongyeop X. Oh
  • , Sung Yeon Hwang
  • , Jonggeon Jegal
  • , Ji Hyeon Kim
  • , Young Wook Chang
  • , Hyeonyeol Jeon
  • , Jeyoung Park

Research output: Contribution to journalArticlepeer-review

22 Citations (Scopus)

Abstract

Demand for the development of novel polymers derived from biomass that can replace petroleum resources has been increasing. In this study, biomass-derived isosorbide was used as a monomer in the polymerization of poly(arylene ether ketone)s, and its synthetic characteristics were investigated. As a phase-transfer catalyst, crown ether has increased the weight-average molecular weight of polymers over 100 kg/mol by improving the reaction efficiency of isosorbide and minimizing the effect of moisture. By controlling the experimental parameters such as halogen monomer, polymerization solvent, time, and temperature, the optimal conditions were found to be fluorine-type monomer, dimethyl sulfoxide, 24 h, and 155 ◦C, respectively. Biomass contents from isosorbide-based polymers were determined by nuclear magnetic resonance and accelerator mass spectroscopy. The synthesized polymer resulted in a high molecular weight that enabled the preparation of transparent polymer films by the solution casting method despite its weak thermal degradation stability compared to aromatic polysulfone. The melt injection molding process was enabled by the addition of plasticizer. The tensile properties were comparable or superior to those of commercial petrochemical specimens of similar molecular weight. Interestingly, the prepared specimens exhibited a significantly lower coefficient of thermal expansion at high temperatures over 150 ◦C compared to polysulfone.

Original languageEnglish
Article number2492
JournalMolecules
Volume24
Issue number13
DOIs
Publication statusPublished - 2019

Bibliographical note

Publisher Copyright:
© 2019 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).

Keywords

  • 18-crown-ether
  • Biomass content
  • Isosorbide
  • Poly(arylene ether)
  • Super engineering plastic
  • Thermal dimensional stability

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