2022 Annual Meeting
(686c) Cyclodextrin Network Supported Catalysis in Flow
Authors
In this work, we functionalized beta-cyclodextrinâs primary alcohol groups into azide groups, and, through an azide-alkyne cycloaddition click reaction with 1,4-diethynylbenzene, formed a crosslinked cyclodextrin network (i.e., the catalyst support). The unique chemical environments of the network support provide advantageous aspects for catalysis. 2 The triazole forms complexes with Pd, beneficial for embedding and attaching the catalytic nanoparticles, while the cyclodextrin forms inclusion complexes with many organic compounds that are present in organic synthesis. The cyclodextrin catalyst is adapted to continuous flow reactions by packing it in a stainless-steel tube where organic reactants are continuously fed for conducting the Suzuki-Miyaura cross-coupling and nitroarene reduction reactions. Reaction kinetics were obtained via automated sampling using an in-line HPLC unit integrated with a sampling valve. The catalyst performed nitroarene reduction reactions at room temperature to a high yield (99%) at fast flow rates (5 min residence time), while Suzuki-Miyaura reactions of aryl bromides and iodides resulted in high yields (98%) at low temperatures (40°C) and residence times (10 min). In comparison with the batch and homogeneous Suzuki-Miyaura/nitroarene reduction reactions, the developed continuous flow chemistry strategy using the cyclodextrin-supported Pd catalyst enables a lower cost of catalyst recovery.