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Environmentally-friendly synthesis of carbonate-type macrodiols and preparation of transparent self-healable thermoplastic polyurethanes

  • Seon Mi Kim
  • , Seul A. Park
  • , Sung Yeon Hwang
  • , Eun Seon Kim
  • , Jonggeon Jegal
  • , Changgyu Im
  • , Hyeonyeol Jeon
  • , Dongyeop X. Oh
  • , Jeyoung Park

Research output: Contribution to journalArticlepeer-review

31 Citations (Scopus)

Abstract

Carbonate-type macrodiols synthesized by base-catalyzed polycondensation of co-diols and dimethyl carbonate as an environmentally-friendly route were subsequently utilized for the preparation of transparent and self-healable thermoplastic polyurethanes (TPUs) containing a carbonate-type soft segment. Three types of macrodiols, obtained from mono, dual and triple diol-monomers for target molecular weights of 1 and 1.5 kg mol-1, were analyzed by 1H NMR integration and the OH titration value. Colorless transparent macrodiols in a liquid state at a room temperature of 20 °C were obtained, except the macrodiol from mono 1,6-hexanediol. Before TPU synthesis, macrodiols require pH neutralization to prevent gelation. TPUs synthesized by a solution pre-polymer method with 4,4'-methylene(bisphenyl isocyanate) and 1,4-butanediol as a chain extender exhibited moderate molecular weights, good transparencies and robust mechanical properties. Especially, the incorporation of 3-methyl-1,5-pentanediol within carbonate-type macrodiols enhanced the transparency of the resultant TPUs by decreasing the degree of microphase separation evidenced by ATR-FTIR and DSC. Interestingly, packing density of hard segments and the degree of microphase separation determined the self-healing efficiency of TPUs, which showed good performances in the case of sourced macrodiols from triple diol-monomers.

Original languageEnglish
Article number663
JournalPolymers
Volume9
Issue number12
DOIs
Publication statusPublished - 30 Nov 2017

Bibliographical note

Publisher Copyright:
© 2017 by the authors.

Keywords

  • Carbonate-type macrodiols
  • Environmentally-friendly synthesis
  • Polycondensation
  • Self-healing elastomers
  • Thermoplastic polyurethanes

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