Department of Chemical Engineering, The University of Mississippi, Oxford, MS, 38677, USA.
School of Polymer Science and Engineering, The University of Southern Mississippi, Hattiesburg, MS, 39406, USA.
Macromol Rapid Commun. 2022 Dec;43(24):e2200414. doi: 10.1002/marc.202200414. Epub 2022 Jul 13.
Reversible addition-fragmentation chain transfer (RAFT) polymerization has proven itself as a powerful polymerization technique affording facile control of molecular weight, molecular weight distribution, architecture, and chain end groups - while maintaining a high level of tolerance for solvent and monomer functional groups. RAFT is highly suited to water as a polymerization solvent, with aqueous RAFT now utilized for applications such as controlled synthesis of ultra-high molecular weight polymers, polymerization induced self-assembly, and biocompatible polymerizations, among others. Water as a solvent represents a non-toxic, cheap, and environmentally friendly alternative to organic solvents traditionally utilized for polymerizations. This, coupled with the benefits of RAFT polymerization, makes for a powerful combination in polymer science. This perspective provides a historical account of the initial developments of aqueous RAFT polymerization at the University of Southern Mississippi from the McCormick Research Group, details practical considerations for conducting aqueous RAFT polymerizations, and highlights some of the recent advances aqueous RAFT polymerization can provide. Finally, some of the future opportunities that this versatile polymerization technique in an aqueous environment can offer are discussed, and it is anticipated that the aqueous RAFT polymerization field will continue to realize these, and other exciting opportunities into the future.
可逆加成-断裂链转移(RAFT)聚合已被证明是一种强大的聚合技术,可轻松控制分子量、分子量分布、结构和链末端基团-同时保持对溶剂和单体官能团的高度容忍。RAFT 非常适合水作为聚合溶剂,现在已将水相 RAFT 用于控制超高分子量聚合物的合成、聚合诱导自组装和生物相容性聚合等应用。水作为溶剂代表了一种无毒、廉价且环保的替代传统聚合中使用的有机溶剂的选择。这一点,再加上 RAFT 聚合的优势,使它在聚合物科学中成为一种强大的组合。本文从密西西比大学 McCormick 研究小组的角度提供了水相 RAFT 聚合最初发展的历史记录,详细说明了进行水相 RAFT 聚合的实际考虑因素,并强调了水相 RAFT 聚合可以提供的一些最新进展。最后,讨论了这种多功能聚合技术在水相环境中可能提供的一些未来机会,并预计水相 RAFT 聚合领域将在未来继续实现这些机会和其他令人兴奋的机会。