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RAFT Polymerization of a Biorenewable/Sustainable Monomer via a Green Process.

Friso G VersteegNiels C HegemanKhaled O SebakhyFrancesco Picchioni
Published in: Macromolecular rapid communications (2022)
A biorenewable polymer is synthesized via a green process using the RAFT principle for the first time in supercritical CO 2 at 300 bar and 80 °C. α-Methylene-γ-butyrolactone polymers of various chain lengths and molecular weights are obtained. The molecular weights vary from 10 000 up to 20 000 with low polydispersity indexes (PDI <1.5). Furthermore, the monomer conversion in supercritical CO 2 is substantially higher, respectively 85% for ScCO 2 compared to ≈65% for polymerizations conducted in dimethyl formamide (DMF) solvent. Chain extensions are carried out to confirm the livingness of the formed polymers in ScCO 2 . This opens up future possibilities of the formation of different polymer architectures in ScCO 2 . The polymers synthesized in ScCO 2 have glass transition temperature (T g ) values ranging from 155 up to 190 °C. However, the presence of residual monomer encapsulated inside the formed polymer matrix affects the glass transition of the polymer that is lowered by increasing monomer concentrations. Hence, additional research is required to eliminate the remaining monomer concentration in the polymer matrix in order to arrive at the optimal T g .
Keyphrases
  • molecularly imprinted
  • high resolution
  • ionic liquid
  • current status
  • liquid chromatography