Johnson J Drake, Kaplan Samuel W, Toth Jozsef, Wang Zian, Maw Mitchell, Sheiko Sergei S, Zhukhovitskiy Aleksandr V
Department of Chemistry, University of North Carolina at Chapel Hill; Chapel Hill, North Carolina 27599, United States.
ACS Cent Sci. 2023 May 11;9(6):1104-1110. doi: 10.1021/acscentsci.3c00032. eCollection 2023 Jun 28.
Controlled incorporation of nitrogen into macromolecular skeletons is a long-standing challenge whose resolution would enable the preparation of soft materials with the scalability of man-made plastics and functionality of Nature's proteins. Nylons and polyurethanes notwithstanding, nitrogen-rich polymer backbones remain scarce, and their synthesis typically lacks precision. Here we report a strategy that begins to address this limitation founded on a mechanistic discovery: ring-opening metathesis polymerization (ROMP) of carbodiimides followed by carbodiimide derivatization. An iridium guanidinate complex was found to initiate and catalyze ROMP of -aryl and -alkyl cyclic carbodiimides. Nucleophilic addition to the resulting polycarbodiimides enabled the preparation of polyureas, polythioureas, and polyguanidinates with varied architectures. This work advances the foundations of metathesis chemistry and opens the door to systematic investigations of structure-folding-property relationships in nitrogen-rich macromolecules.
将氮可控地引入大分子骨架是一项长期存在的挑战,解决这一挑战将能够制备出具有人造塑料的可扩展性和天然蛋白质功能的软材料。尽管有尼龙和聚氨酯,但富含氮的聚合物主链仍然稀少,并且它们的合成通常缺乏精确性。在此,我们报告一种基于机理发现而开始解决这一限制的策略:碳二亚胺的开环易位聚合(ROMP),随后进行碳二亚胺衍生化。发现一种胍基铱配合物可引发并催化芳基和烷基环状碳二亚胺的ROMP。对所得聚碳二亚胺进行亲核加成能够制备出具有不同结构的聚脲、聚硫脲和聚胍盐。这项工作推进了易位化学的基础,并为系统研究富含氮的大分子中的结构-折叠-性质关系打开了大门。