4.8 Article

Copolymerization of lactones and bioaromatics via concurrent ring-opening polymerization/polycondensation

期刊

GREEN CHEMISTRY
卷 19, 期 8, 页码 1877-1888

出版社

ROYAL SOC CHEMISTRY
DOI: 10.1039/c6gc03238a

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资金

  1. National Science Foundation [CHE-1305794, CHE-1607263]
  2. U.S. Bioplastics, LLC
  3. Florida High Tech Corridor Council
  4. CRIF-MU program [CHE-0541761]
  5. Division Of Chemistry
  6. Direct For Mathematical & Physical Scien [1607263, 1305794] Funding Source: National Science Foundation

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The general and efficient copolymerization of lactones with hydroxy-acid bioaromatics was accomplished via a concurrent ring-opening polymerization (ROP) and polycondensation methodology. Suitable lactones were L-lactide or e-caprolactone and four hydroxy-acid comonomers were prepared as hydroxyethyl variants of the bioaromatics syringic acid, vanillic acid, ferulic acid, and p-coumaric acid. Copolymerization conditions were optimized on a paradigm system with a 20 : 80 feed ratio of caprolactone : hydroxyethylsyringic acid. Among six investigated catalysts, polymer yield was optimized with 1 mol% of Sb2O3, affording eight copolymer series in good yields (32-95% for lactide; 80-95% for caprolactone). Half of the polymers were soluble in the GPC solvent hexafluoroisopropanol and analyzed to high molecular weight, with M-n = 10 500-60 700 Da. Mass spectrometry and H-1 NMR analysis revealed an initial ring-opening formation of oligolactones, followed by polycondensation of these with the hydroxy-acid bioaromatic, followed by transesterification, yielding a random copolymer. By copolymerizing bioaromatics with L-lactide, the glass transition temperature (T-g) of polylactic acid (PLA, 50 degrees C) could be improved and tuned in the range of 62-107 degrees C; the thermal stability (T-95%) of PLA (207 degrees C) could be substantially increased up to 323 degrees C. Similarly, bioaromatic incorporation into polycaprolactone (PCL, T-g = -60 degrees C) accessed an improved Tg range from -48 to 105 degrees C, while exchanging petroleum-based content with biobased content. Thus, this ROP/polycondensation methodology yields substantially or fully biobased polymers with thermal properties competitive with incumbent packaging thermoplastics such as polyethylene terephthalate (T-g = 67 degrees C) or polystyrene (T-g = 95 degrees C).

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