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Improving the Post-polymerization Modification of Bio-Based Itaconate Unsaturated Polyesters: Catalyzing Aza-Michael Additions With Reusable Iodine on Acidic Alumina

机译:改善生物基型型型型型型不饱和聚酯的聚合改性:催化AZA-MICHAEL在酸性氧化铝上可重复使用的碘

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摘要

Bio-based platform molecules such as itaconic, fumaric, and muconic acid offer much promise in the formation of sustainable unsaturated polyester resins upon reaction with suitable diols and polyols. The C=C bonds present in these polyester chains allows for post-polymerization modification and such moieties are conventionally utilized in curing processes during the manufacture of coatings. The C=C modification sites can also act as points to add useful pendants which can alter the polymers final properties such as glass transition temperature, biodegradability, hardness, polarity, and strength. A commonly observed modification is the addition of secondary amines via an aza-Michael addition. Conventional procedures for the addition of amines onto itaconate polyesters require reaction times of several days as a result of undesired side reactions, in particular, the formation of the less reactive mesaconate regioisomer. The slow reversion of the mesaconate back to itaconate, followed by subsequent amine addition, is the primary reason for such extended reaction times. Herein we report our efforts toward finding a suitable catalyst for the aza-Michael addition of diethylamine onto a model substrate, dimethyl itaconate, with the aim of being able to add amine onto the itaconate units without excessive regioisomerization to the inactive mesaconate. A catalyst screen showed that iodine on acidic alumina results in an effective, heterogeneous, reusable catalyst for the investigated aza-Michael addition. Extending the study further, itaconate polyester was prepared by Candida Antartica Lipase B (CaL-B) via enzymatic polytranesterification and subsequently modified with diethylamine using the iodine on acidic alumina catalyst, dramatically reducing the required length of reaction (>70% addition after 4 h). The approach represents a multidisciplinary example whereby biocatalytic polymerization is combined with chemocatalytic modification of the resultant polyester for the formation of useful bio-based polyesters.
机译:基于生物的平台分子如衣康,富马酸和粘液酸在与合适的二醇和多元醇反应时,在可持续的不饱和聚酯树脂中提供了许多许多许多许多承诺。这些聚酯链中存在的C = C键允许后聚合后修饰,并且在制造涂层期间通常用于固化过程中的这些部分。 C = C改性位点也可以作为添加有用垂侧的点,这可以改变聚合物最终性质,例如玻璃化转变温度,生物降解性,硬度,极性和强度。通常观察到的修饰是通过AZA-Michael添加加入仲胺。常规方法用于加入甲胺的甲酸盐聚酯上的反应时间是由于不希望的副反应的结果,特别是形成较少的反应性脱羟酸酯酸酯。蛋白质酸背的缓慢恢复回甲酸盐,其次是随后的胺添加,是这种延长反应时间的主要原因。在此,我们向我们的努力寻找含有AZA-Michael的合适催化剂的催化剂在模型底物上,其目的是能够在衣康酸盐单元上添加胺而不过度测定的蛋白质。催化剂筛选显示碘氧化铝对所研究的AZA-Michael添加的有效,非均相,可重复使用的催化剂是有效的,非均相的可再使用催化剂。进一步延伸研究,通过酶促聚丙酸盐酯化,通过酶促聚丙酸酯B(CAL-B)制备汽康酸酯聚酯,随后在酸性氧化铝催化剂上用二乙胺改性,大大减少了所需的反应长度(> 40%) )。该方法表示多学科示例,其中生物催化聚合与所得聚酯的化学催化改性结合形成有用的生物基聚酯。

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