Maksso Isaac, Samanta Ramesh C, Zhan Yifei, Zhang Kai, Warratz Svenja, Ackermann Lutz
Institut für Organische und Biomolekulare Chemie and Wöhler Research Institute for Sustainable Chemistry (WISCh), Georg-August-Universität Tammannstraße 2 37077 Göttingen Germany
Institut für Holztechnologie und Holzwerkstoffe, Georg-August-Universität Büsgenweg 4 37077 Göttingen Germany.
Chem Sci. 2023 Jul 5;14(30):8109-8118. doi: 10.1039/d3sc02549g. eCollection 2023 Aug 2.
The chemical up-cycling of polymers into value-added materials offers a unique opportunity to place plastic waste in a new value chain towards a circular economy. Herein, we report the selective up-cycling of polystyrenes and polyolefins to C(sp)-H azidated materials under electrocatalytic conditions. The functionalized polymers were obtained with high retention of mass average molecular mass and high functionalization through chemo-selective mangana-electrocatalysis. Our strategy proved to be broadly applicable to a variety of homo- and copolymers. Polyethylene, polypropylene as well as post-consumer polystyrene materials were functionalized by this approach, thereby avoiding the use of hypervalent-iodine reagents in stoichiometric quantities by means of electrocatalysis. This study, hence, represents a chemical oxidant-free polymer functionalization by electro-oxidation. The electrocatalysis proved to be scalable, which highlights its unique feature for a green hydrogen economy by means of the hydrogen evolution reaction (HER).
将聚合物化学升级循环为高附加值材料为将塑料垃圾置于通向循环经济的新价值链中提供了独特机遇。在此,我们报告了在电催化条件下将聚苯乙烯和聚烯烃选择性升级循环为C(sp)-H叠氮化材料。通过化学选择性锰电催化获得了具有高分子量保留率和高官能化程度的功能化聚合物。我们的策略被证明广泛适用于各种均聚物和共聚物。聚乙烯、聚丙烯以及消费后聚苯乙烯材料通过这种方法实现了官能化,从而通过电催化避免了化学计量的高价碘试剂的使用。因此,本研究代表了一种通过电氧化实现的无化学氧化剂的聚合物官能化。电催化被证明具有可扩展性,这突出了其通过析氢反应(HER)实现绿色氢经济的独特特性。