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Copolyesters Made from 1,4-Butanediol, Sebacic Acid, and d-Glucose by Melt and Enzymatic Polycondensation

机译:由1,4-丁二醇,癸二酸和d-葡萄糖通过熔融和酶促缩聚反应制得的共聚酯

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摘要

Biotechnologically accessible 1,4-butanediol and vegetal oil-based diethyl sebacate were copolymerized with bicyclic acetalized d-glucose derivatives (Glux) by polycondensation both in the melt at high temperature and in solution at mild temperature mediated by polymer-supported Candida antarctica lipase B (CALB). Two series of random copolyesters (PBxGluxySeb and PBSebxGluxy) were prepared differing in which d-glucose derivative (Glux diol or Glux diester) was used as comonomer. The three parent homopolyesters PBSeb, PBGlux, and PGluxSeb were prepared as well. Both methods were found to be effective for polymerization although significant higher molecular weights were achieved by melt polycondensation. The thermal properties displayed by the copolyesters were largely dependent on composition and also on the functionality of the replacing Glux unit. The thermal stability of PBSeb was retained or even slightly increased after copolymerization with Glux, whereas crystallinity and melting temperature were largely depressed. On the contrary, the glass-transition temperature noticeably increased with the content in Glux units. PGluxSeb distinguished in displaying both Tg and Tm higher than PBSeb because a different crystal structure is adopted by this homopolyester. The hydrolytic degradability of PBSeb in water was enhanced by copolymerization, in particular, when biodegradation was assisted by lipases.
机译:通过聚合物支持的念珠菌南极脂肪酶B介导的高温和熔体中的高温和溶液中的缩聚作用,将可生物技术利用的1,4-丁二醇和植物油基癸二酸二乙酯与双环缩醛化d-葡萄糖衍生物(Glux)共聚。 (CALB)。制备了两个系列的无规共聚酯(PBxGluxySeb和PBSebxGluxy),不同之处在于使用了d-葡萄糖衍生物(Glux二醇或Glux二酯)作为共聚单体。还制备了三种母体均聚酯PBSeb,PBGlux和PGluxSeb。尽管通过熔融缩聚获得了明显更高的分子量,但是发现这两种方法对于聚合都是有效的。共聚酯表现出的热性能在很大程度上取决于组成以及所取代的Glux单元的功能。与Glux共聚后,PBSeb的热稳定性得以保留,甚至略有提高,而结晶度和熔融温度则大大降低。相反,玻璃化转变温度随着以Glux为单位的含量而明显增加。 PGluxSeb具有比PBSeb高的Tg和Tm,因为该均聚酯采用了不同的晶体结构。 PBSeb在水中的水解可降解性通过共聚得到增强,特别是在脂肪酶辅助下进行生物降解时。

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