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Synthesis and Biodegradability of Tartaric Acid-Based Poly(ester-thioether)s via Thiol–Ene Click Polymerization

[Image: see text] Using scandium triflate [Sc(OTf)(3)] as a catalyst, chemoselective esterification of tartaric acids by 3-butene-1-ol was performed, and we produced three dialkene monomers: l-di(3-butenyl) tartrate (BTA), d-BTA, and meso-BTA. Thiol–ene polyaddition of these dialkenyl tartrates and...

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Autores principales: Imamura, Ryota, Oto, Kota, Kataoka, Kaho, Takasu, Akinori
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2023
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10324057/
https://www.ncbi.nlm.nih.gov/pubmed/37426220
http://dx.doi.org/10.1021/acsomega.2c07627
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author Imamura, Ryota
Oto, Kota
Kataoka, Kaho
Takasu, Akinori
author_facet Imamura, Ryota
Oto, Kota
Kataoka, Kaho
Takasu, Akinori
author_sort Imamura, Ryota
collection PubMed
description [Image: see text] Using scandium triflate [Sc(OTf)(3)] as a catalyst, chemoselective esterification of tartaric acids by 3-butene-1-ol was performed, and we produced three dialkene monomers: l-di(3-butenyl) tartrate (BTA), d-BTA, and meso-BTA. Thiol–ene polyaddition of these dialkenyl tartrates and dithiols including 1,2-ethanedithiol (ED), ethylene bis(thioglycolate) (EBTG), and d,l-dithiothreitol (DTT) proceeded in toluene at 70 °C under nitrogen to give tartrate-containing poly(ester-thioether)s (M(n), (4.2–9.0) × 10(3); molecular weight distribution (M(w)/M(n)), 1.6–2.5). In differential scanning calorimetry, the poly(ester-thioether)s showed single T(g)s between −25 and −8 °C. In biochemical oxygen demand (BOD) tests using activated sludge, poly(l-BTA-alt-EBTG) and poly(l-BTA-alt-ED) showed 32 and 8% biodegradability, which is comparable to that of similar l-malate-containing poly(ester-thioether)s (23 and 13% biodegradation, respectively). Notably, we observed enantio and diastereo effects on biodegradation because poly(l-BTA-alt-EBTG), poly(d-BTA-alt-EBTG), and poly(meso-BTA-alt- EBTG) showed different degradation behaviors during the biodegradation test (BOD/theoretical oxygen demand (TOD) values after 28 days, 32, 70, and 43%, respectively). Our findings provide insights into the design of biomass-based biodegradable polymers containing chiral centers.
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spelling pubmed-103240572023-07-07 Synthesis and Biodegradability of Tartaric Acid-Based Poly(ester-thioether)s via Thiol–Ene Click Polymerization Imamura, Ryota Oto, Kota Kataoka, Kaho Takasu, Akinori ACS Omega [Image: see text] Using scandium triflate [Sc(OTf)(3)] as a catalyst, chemoselective esterification of tartaric acids by 3-butene-1-ol was performed, and we produced three dialkene monomers: l-di(3-butenyl) tartrate (BTA), d-BTA, and meso-BTA. Thiol–ene polyaddition of these dialkenyl tartrates and dithiols including 1,2-ethanedithiol (ED), ethylene bis(thioglycolate) (EBTG), and d,l-dithiothreitol (DTT) proceeded in toluene at 70 °C under nitrogen to give tartrate-containing poly(ester-thioether)s (M(n), (4.2–9.0) × 10(3); molecular weight distribution (M(w)/M(n)), 1.6–2.5). In differential scanning calorimetry, the poly(ester-thioether)s showed single T(g)s between −25 and −8 °C. In biochemical oxygen demand (BOD) tests using activated sludge, poly(l-BTA-alt-EBTG) and poly(l-BTA-alt-ED) showed 32 and 8% biodegradability, which is comparable to that of similar l-malate-containing poly(ester-thioether)s (23 and 13% biodegradation, respectively). Notably, we observed enantio and diastereo effects on biodegradation because poly(l-BTA-alt-EBTG), poly(d-BTA-alt-EBTG), and poly(meso-BTA-alt- EBTG) showed different degradation behaviors during the biodegradation test (BOD/theoretical oxygen demand (TOD) values after 28 days, 32, 70, and 43%, respectively). Our findings provide insights into the design of biomass-based biodegradable polymers containing chiral centers. American Chemical Society 2023-04-12 /pmc/articles/PMC10324057/ /pubmed/37426220 http://dx.doi.org/10.1021/acsomega.2c07627 Text en © 2023 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by-nc-nd/4.0/Permits non-commercial access and re-use, provided that author attribution and integrity are maintained; but does not permit creation of adaptations or other derivative works (https://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Imamura, Ryota
Oto, Kota
Kataoka, Kaho
Takasu, Akinori
Synthesis and Biodegradability of Tartaric Acid-Based Poly(ester-thioether)s via Thiol–Ene Click Polymerization
title Synthesis and Biodegradability of Tartaric Acid-Based Poly(ester-thioether)s via Thiol–Ene Click Polymerization
title_full Synthesis and Biodegradability of Tartaric Acid-Based Poly(ester-thioether)s via Thiol–Ene Click Polymerization
title_fullStr Synthesis and Biodegradability of Tartaric Acid-Based Poly(ester-thioether)s via Thiol–Ene Click Polymerization
title_full_unstemmed Synthesis and Biodegradability of Tartaric Acid-Based Poly(ester-thioether)s via Thiol–Ene Click Polymerization
title_short Synthesis and Biodegradability of Tartaric Acid-Based Poly(ester-thioether)s via Thiol–Ene Click Polymerization
title_sort synthesis and biodegradability of tartaric acid-based poly(ester-thioether)s via thiol–ene click polymerization
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10324057/
https://www.ncbi.nlm.nih.gov/pubmed/37426220
http://dx.doi.org/10.1021/acsomega.2c07627
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