Department of Chemical Engineering and Materials Science, University of Minnesota, Minneapolis, Minnesota 55455, United States.
Department of Chemistry, University of Minnesota, Minneapolis, Minnesota 55455, United States.
ACS Macro Lett. 2023 Jul 18;12(7):935-942. doi: 10.1021/acsmacrolett.3c00251. Epub 2023 Jun 28.
Simultaneous ring-opening copolymerization is a powerful strategy for the synthesis of highly functional copolymers from different types of cyclic monomers. Although copolymers are essential to the plastics industry, environmental concerns associated with current fossil-fuel-based synthetic polymers have led to an increasing interest in the use of renewable feedstock for polymer synthesis. Herein, we report a scalable synthetic platform to afford unique polysaccharides with different pendant functional groups from biomass-derived levoglucosan and ε-caprolactone via cationic ring-opening copolymerization (cROCOP). Biocompatible and recyclable bismuth triflate was identified as the optimal catalyst for cROCOP of levoglucosan. Copolymers from tribenzyl levoglucosan and ε-caprolactone, as well as from tribenzyl and triallyl levoglucosan, were successfully synthesized. The tribenzyl levoglucosan monomer composition ranged from 16% to 64% in the copolymers with ε-caprolactone and 22% to 79% in the copolymers with triallyl levoglucosan. The allylic levoglucosan copolymer can be utilized as a renewably derived scaffold to modify copolymer properties and create other polymer architectures via postpolymerization modification. Monomer reactivity ratios were determined to investigate the copolymer microstructure, indicating that levoglucosan-based copolymers have a gradient architecture. Additionally, we demonstrated that the copolymer glass transition temperature (, ranging from -44.3 to 33.8 °C), thermal stability, and crystallization behavior could be tuned based on the copolymer composition. Overall, this work underscores the utility of levoglucosan as a bioderived feedstock for the development of functional sugar-based copolymers with applications ranging from sustainable materials to biomaterials.
开环共聚是一种从不同类型的环状单体合成高功能共聚物的强大策略。虽然共聚物对塑料工业至关重要,但与当前基于化石燃料的合成聚合物相关的环境问题促使人们越来越关注使用可再生原料进行聚合物合成。在此,我们报告了一种可扩展的合成平台,可从生物质衍生的左旋葡聚糖和ε-己内酯通过阳离子开环共聚(cROCOP)得到具有不同侧基官能团的独特多糖。生物相容性和可回收的三氟甲磺酸铋被确定为 cROCOP 左旋葡聚糖的最佳催化剂。成功合成了来自三苄基左旋葡聚糖和 ε-己内酯的共聚物,以及来自三苄基和三烯丙基左旋葡聚糖的共聚物。在与 ε-己内酯的共聚物中,三苄基左旋葡聚糖单体组成范围为 16%至 64%,在与三烯丙基左旋葡聚糖的共聚物中为 22%至 79%。烯丙基左旋葡聚糖共聚物可用作可再生衍生支架,通过后聚合修饰来修饰共聚物性质并创造其他聚合物结构。确定单体反应性比以研究共聚物的微观结构,表明基于左旋葡聚糖的共聚物具有梯度结构。此外,我们证明了共聚物的玻璃化转变温度( ,范围从-44.3 至 33.8°C)、热稳定性和结晶行为可以根据共聚物组成进行调整。总的来说,这项工作强调了左旋葡聚糖作为生物衍生原料在开发具有从可持续材料到生物材料等应用的功能性糖基共聚物方面的实用性。