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Ultrahigh Thermoresistant Lightweight Bioplastics Developed from Fermentation Products of Cellulosic Feedstock

机译:超高抗热的轻量级生物塑料由发酵的产物纤维素原料

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摘要

Production of bioplastics from renewable biological resources is a prerequisite for the development of a circular and sustainable society. Current bioplastics are mostly heat-sensitive aliphatic polymers, requiring thermoresistant aromatic bioplastics. Herein, 3-amino-4-hydroxybenzoic acid (AHBA) and 4-aminobenzoic acid (ABA) are produced from kraft pulp, an inedible cellulosic feedstock, using metabolically engineered bacteria. AHBA is chemically converted to 3,4-diaminobenzoic acid (DABA); subsequently, poly(2,5-benzimidazole) is obtained by the polycondensation of DABA and processed into an ultrahigh thermoresistant film. The copolymerization of DABA with a small amount of ABA dramatically increases the degradation temperatures of the resulting films (over 740 degrees C) to yield the most thermoresistant plastic on record. Density functional theory calculations indicate that the incorporation of ABA strengthens the interchain hydrogen bonds between aromatic imidazole rings. Thus, an alternative organic molecular design is proposed for thermoresistant plastics without using heavy inorganics, although continuous aromatic heterocycles are widely considered ideal for polymer thermoresistance. This innovative macromolecular design increases thermoresistance and can be widely applied to well-processable plastics for the production of lightweight materials and is expected to contribute to the development of a more sustainable society.
机译:生产可再生的生物塑料生物资源是一个先决条件循环和可持续的发展的社会。热敏性脂肪族聚合物,要求抗热的芳香生物塑料。3-amino-4-hydroxybenzoic酸(AHBA)和从卡夫4-aminobenzoic酸(ABA)生产纸浆、不能吃的纤维素原料使用代谢工程细菌。化学转化为3,4-diaminobenzoic酸(背景);大巴山的缩聚,得到的加工成一个超高抗热的电影。大巴山和少量的共聚阿坝大大增加了退化温度(超过740的电影度)最抗热的屈服塑料。计算表明,整合ABA增强跨链氢键芳香族异吡唑环之间。提出了替代有机分子设计不使用重型抗热的塑料无机物,虽然持续的芳香杂环化合物被广泛认为是理想的聚合物热阻。大分子设计增加热阻,可以广泛应用于well-processable塑料生产轻质材料和预计作出贡献发展一个更可持续的社会。

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