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微生物合成的低至中羟基己酸含量的聚(羟基丁酸-co-羟基己酸酯):性能与应用。

Microbially synthesized poly(hydroxybutyrate-co-hydroxyhexanoate) with low to moderate hydroxyhexanoate content: Properties and applications.

机构信息

Technische Universität Berlin, Institute of Biotechnology, Chair of Bioprocess Engineering, Berlin, Germany.

Bundesanstalt für Materialforschung und -prüfung (BAM), Berlin, Germany.

出版信息

Int J Biol Macromol. 2024 Apr;263(Pt 1):130188. doi: 10.1016/j.ijbiomac.2024.130188. Epub 2024 Feb 17.

Abstract

Plastic pollution is the biggest environmental concern of our time. Breakdown products like micro- and nano-plastics inevitably enter the food chain and pose unprecedented health risks. In this scenario, bio-based and biodegradable plastic alternatives have been given a momentum aiming to bridge a transition towards a more sustainable future. Polyhydroxyalkanoates (PHAs) are one of the few thermoplastic polymers synthesized 100 % via biotechnological routes which fully biodegrade in common natural environments. Poly(hydroxybutyrate-co-hydroxyhexanoate) [P(HB-co-HHx)] is a PHA copolymer with great potential for the commodity polymers industry, as its mechanical properties can be tailored through fine-tuning of its molar HHx content. We have recently developed a strategy that enables for reliable tailoring of the monomer content of P(HB-co-HHx). Nevertheless, there is often a lack of comprehensive investigation of the material properties of PHAs to evaluate whether they actually mimic the functionalities of conventional plastics. We present a detailed study of P(HB-co-HHx) copolymers with low to moderate hydroxyhexanoate content to understand how the HHx monomer content influences the thermal and mechanical properties and to link those to their abiotic degradation. By increasing the HHx fractions in the range of 2 - 14 mol%, we impart an extension of the processing window and application range as the melting temperature (T) and glass temperature (T) of the copolymers decrease from T 165 °C to 126 °C, T 4 °C to -5.9 °C, accompanied by reduced crystallinity from 54 % to 20 %. Elongation at break was increased from 5.7 % up to 703 % at 14 mol% HHx content, confirming that the range examined was sufficiently large to obtain ductile and brittle copolymers, while tensile strength was maintained throughout the studied range. Finally, accelerated abiotic degradation was shown to be slowed down with an increasing HHx fraction decreasing from 70 % to 55 % in 12 h.

摘要

塑料污染是我们这个时代最大的环境问题。微塑料和纳米塑料等降解产物不可避免地进入食物链,对健康构成了前所未有的威胁。在这种情况下,生物基和可生物降解的塑料替代品应运而生,旨在为迈向更可持续的未来铺平道路。聚羟基烷酸酯(PHA)是少数几种通过生物技术路线完全合成的热塑性聚合物之一,在常见的自然环境中完全可生物降解。聚(羟基丁酸-co-羟基己酸酯)[P(HB-co-HHx)]是一种 PHA 共聚物,具有巨大的商品聚合物行业潜力,因为其力学性能可以通过精细调整其摩尔 HHx 含量来进行调整。我们最近开发了一种策略,可以可靠地调整 P(HB-co-HHx)的单体含量。然而,对于 PHA 的材料性能往往缺乏全面的研究,以评估它们是否实际上模仿了传统塑料的功能。我们对低至中等羟基己酸含量的 P(HB-co-HHx)共聚物进行了详细研究,以了解 HHx 单体含量如何影响热性能和机械性能,并将这些性能与其非生物降解联系起来。通过将 HHx 分数增加到 2-14mol%范围内,我们扩展了加工窗口和应用范围,因为共聚物的熔点(T)和玻璃化转变温度(T)从 165°C 降低到 126°C,T 从 4°C 降低到-5.9°C,同时结晶度从 54%降低到 20%。断裂伸长率从 5.7%增加到 14mol% HHx 含量时的 703%,证实所研究的范围足够大,可以获得韧性和脆性共聚物,而在整个研究范围内拉伸强度保持不变。最后,随着 HHx 分数从 70%降低到 12 小时内的 55%,非生物降解的加速被证明减缓了。

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