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Published on: May 10, 2013
Biodegradability of poly(ester-thioether)s containing chiral biomass via a Michael-type thiol-ene click reaction
Ryota Imamura1, Akinori Takasu1
1Division of Soft Materials, Graduated School of Engineering, Nagoya Institute of Technology Gokiso-cho, Showa-ku Nagoya 466-8555 Japan takasu.akinori@nitech.ac.jp.
Abstract:
We prepared dianhydrosugar-based diacrylates: isosorbide bis(acrylate) (ISDA) and isomannide bis(acrylate) (IMDA) from the corresponding dianhydrosugars. Using a scandium triflate as the catalyst, the chemoselective dehydration of d-, l-, and meso-tartaric acids with 2-mercaptoethanol selectively synthesized three dithiols: l-bis(2-mercaptoethyl)tartrate (META), d-META, and meso-META. The thiol-Michael click polyaddition of ISDA or IMDA with the three dithiols proceeded in N,N-dimethylformamide (40 °C) using triethylamine as the catalyst, yielding the expected six poly(ester-thioether) diastereomers (M n, 8.2 × 103 to 9.2 × 103; molecular weight distribution (M w/M n), 1.29-1.51). The synthesized poly(ester-thioether)s showed a single glass transition temperature (T g) between -8 and 14 °C. In biodegradation measurements, monitored by biochemical oxygen demand (BOD) values in active sludge, poly(IMDA-alt-meso-META), poly(ISDA-alt-l-META), and poly(ISDA-alt-d-META) showed lower biodegradability. In contrast, poly(IMDA-alt-l-META), poly(IMDA-alt-d-META), and poly(ISDA-alt-meso-META) showed 16% to 28% biodegradation after 30 days, indicating diastereomeric effects on biodegradability. Since enzymatic hydrolysis using lipase showed a similar trend to the BOD tests, we concluded that biodegradability depends on the stereochemistry along the polymer backbone.
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