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Triblock polyester thermoplastic elastomers with semi-aromatic polymer end blocks by ring-opening copolymerization
Thermoplastic elastomers benefit from high elasticity and straightforward (re)processability; they are widely used across a multitude of sectors. Currently, the majority derive from oil, do not degrade or undergo chemical recycling. Here a new series of ABA triblock polyesters are synthesized and sh...
Autores principales: | , , , , , , , |
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Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
The Royal Society of Chemistry
2020
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Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8159401/ https://www.ncbi.nlm.nih.gov/pubmed/34094122 http://dx.doi.org/10.1039/d0sc00463d |
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author | Gregory, Georgina L. Sulley, Gregory S. Carrodeguas, Leticia Peña Chen, Thomas T. D. Santmarti, Alba Terrill, Nicholas J. Lee, Koon-Yang Williams, Charlotte K. |
author_facet | Gregory, Georgina L. Sulley, Gregory S. Carrodeguas, Leticia Peña Chen, Thomas T. D. Santmarti, Alba Terrill, Nicholas J. Lee, Koon-Yang Williams, Charlotte K. |
author_sort | Gregory, Georgina L. |
collection | PubMed |
description | Thermoplastic elastomers benefit from high elasticity and straightforward (re)processability; they are widely used across a multitude of sectors. Currently, the majority derive from oil, do not degrade or undergo chemical recycling. Here a new series of ABA triblock polyesters are synthesized and show high-performances as degradable thermoplastic elastomers; their composition is poly(cyclohexene-alt-phthalate)-b-poly(ε-decalactone)-b-poly(cyclohexene-alt-phthalate) {PE–PDL–PE}. The synthesis is accomplished using a zinc(ii)/magnesium(ii) catalyst, in a one-pot procedure where ε-decalactone ring-opening polymerization yielding dihydroxyl telechelic poly(ε-decalatone) (PDL, soft-block) occurs first and, then, addition of phthalic anhydride/cyclohexene oxide ring-opening copolymerization delivers semi-aromatic polyester (PE, hard-block) end-blocks. The block compositions are straightforward to control, from the initial monomer stoichiometry, and conversions are high (85–98%). Two series of polyesters are prepared: (1) TBPE-1 to TBPE-5 feature an equivalent hard-block volume fraction (f(hard) = 0.4) and variable molar masses 40–100 kg mol(−1); (2) TBPE-5 to TBPE-9 feature equivalent molar masses (∼100 kg mol(−1)) and variable hard-block volume fractions (0.12 < f(hard) < 0.4). Polymers are characterized using spectroscopies, size-exclusion chromatography (SEC), thermal gravimetric analysis (TGA), differential scanning calorimetry (DSC) and dynamic mechanical thermal analysis (DMTA). They are amorphous, with two glass transition temperatures (∼−51 °C for PDL; +138 °C for PE), and block phase separation is confirmed using small angle X-ray scattering (SAXS). Tensile mechanical performances reveal thermoplastic elastomers (f(hard) < 0.4 and N > 1300) with linear stress–strain relationships, high ultimate tensile strengths (σ(b) = 1–5 MPa), very high elongations at break (ε(b) = 1000–1900%) and excellent elastic recoveries (98%). There is a wide operating temperature range (−51 to +138 °C), an operable processing temperature range (+100 to +200 °C) and excellent thermal stability (T(d,5%) ∼ 300 °C). The polymers are stable in aqueous environments, at room temperature, but are hydrolyzed upon gentle heating (60 °C) and treatment with an organic acid (para-toluene sulfonic acid) or a common lipase (Novozyme® 51032). The new block polyesters show significant potential as sustainable thermoplastic elastomers with better properties than well-known styrenic block copolymers or polylactide-derived elastomers. The straightforward synthesis allows for other commercially available and/or bio-derived lactones, epoxides and anhydrides to be developed in the future. |
format | Online Article Text |
id | pubmed-8159401 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2020 |
publisher | The Royal Society of Chemistry |
record_format | MEDLINE/PubMed |
spelling | pubmed-81594012021-06-04 Triblock polyester thermoplastic elastomers with semi-aromatic polymer end blocks by ring-opening copolymerization Gregory, Georgina L. Sulley, Gregory S. Carrodeguas, Leticia Peña Chen, Thomas T. D. Santmarti, Alba Terrill, Nicholas J. Lee, Koon-Yang Williams, Charlotte K. Chem Sci Chemistry Thermoplastic elastomers benefit from high elasticity and straightforward (re)processability; they are widely used across a multitude of sectors. Currently, the majority derive from oil, do not degrade or undergo chemical recycling. Here a new series of ABA triblock polyesters are synthesized and show high-performances as degradable thermoplastic elastomers; their composition is poly(cyclohexene-alt-phthalate)-b-poly(ε-decalactone)-b-poly(cyclohexene-alt-phthalate) {PE–PDL–PE}. The synthesis is accomplished using a zinc(ii)/magnesium(ii) catalyst, in a one-pot procedure where ε-decalactone ring-opening polymerization yielding dihydroxyl telechelic poly(ε-decalatone) (PDL, soft-block) occurs first and, then, addition of phthalic anhydride/cyclohexene oxide ring-opening copolymerization delivers semi-aromatic polyester (PE, hard-block) end-blocks. The block compositions are straightforward to control, from the initial monomer stoichiometry, and conversions are high (85–98%). Two series of polyesters are prepared: (1) TBPE-1 to TBPE-5 feature an equivalent hard-block volume fraction (f(hard) = 0.4) and variable molar masses 40–100 kg mol(−1); (2) TBPE-5 to TBPE-9 feature equivalent molar masses (∼100 kg mol(−1)) and variable hard-block volume fractions (0.12 < f(hard) < 0.4). Polymers are characterized using spectroscopies, size-exclusion chromatography (SEC), thermal gravimetric analysis (TGA), differential scanning calorimetry (DSC) and dynamic mechanical thermal analysis (DMTA). They are amorphous, with two glass transition temperatures (∼−51 °C for PDL; +138 °C for PE), and block phase separation is confirmed using small angle X-ray scattering (SAXS). Tensile mechanical performances reveal thermoplastic elastomers (f(hard) < 0.4 and N > 1300) with linear stress–strain relationships, high ultimate tensile strengths (σ(b) = 1–5 MPa), very high elongations at break (ε(b) = 1000–1900%) and excellent elastic recoveries (98%). There is a wide operating temperature range (−51 to +138 °C), an operable processing temperature range (+100 to +200 °C) and excellent thermal stability (T(d,5%) ∼ 300 °C). The polymers are stable in aqueous environments, at room temperature, but are hydrolyzed upon gentle heating (60 °C) and treatment with an organic acid (para-toluene sulfonic acid) or a common lipase (Novozyme® 51032). The new block polyesters show significant potential as sustainable thermoplastic elastomers with better properties than well-known styrenic block copolymers or polylactide-derived elastomers. The straightforward synthesis allows for other commercially available and/or bio-derived lactones, epoxides and anhydrides to be developed in the future. The Royal Society of Chemistry 2020-05-04 /pmc/articles/PMC8159401/ /pubmed/34094122 http://dx.doi.org/10.1039/d0sc00463d Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/ |
spellingShingle | Chemistry Gregory, Georgina L. Sulley, Gregory S. Carrodeguas, Leticia Peña Chen, Thomas T. D. Santmarti, Alba Terrill, Nicholas J. Lee, Koon-Yang Williams, Charlotte K. Triblock polyester thermoplastic elastomers with semi-aromatic polymer end blocks by ring-opening copolymerization |
title | Triblock polyester thermoplastic elastomers with semi-aromatic polymer end blocks by ring-opening copolymerization |
title_full | Triblock polyester thermoplastic elastomers with semi-aromatic polymer end blocks by ring-opening copolymerization |
title_fullStr | Triblock polyester thermoplastic elastomers with semi-aromatic polymer end blocks by ring-opening copolymerization |
title_full_unstemmed | Triblock polyester thermoplastic elastomers with semi-aromatic polymer end blocks by ring-opening copolymerization |
title_short | Triblock polyester thermoplastic elastomers with semi-aromatic polymer end blocks by ring-opening copolymerization |
title_sort | triblock polyester thermoplastic elastomers with semi-aromatic polymer end blocks by ring-opening copolymerization |
topic | Chemistry |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8159401/ https://www.ncbi.nlm.nih.gov/pubmed/34094122 http://dx.doi.org/10.1039/d0sc00463d |
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