A countercurrent microflow strategy for simultaneous high selectivity and conversion in aromatic nitration
Abstract
Abstract Aromatic nitration, a hazardously complex process, poses serious risks. A major challenge for the reaction is the trade-off effect between spatiotemporal conversion rate and selectivity, particularly the over-nitration side reactions that have plagued the field for nearly 200 years. We propose a countercurrent microflow mode between two microreactors, which boosts spatiotemporal conversion rate by over five times compared to the normal single-stage co-current microflow mode, and two orders of magnitude compared to traditional batch reactors. Meanwhile, we identify an inhibition mechanism of over-nitration. The generated H 2 O in the main reaction can in situ reduce the dissolution of nitroaromatics in the aqueous phase and effectively prevent over-nitration. Through synergistic control of both kinetics and thermodynamics in the microreaction process, high spatiotemporal conversion and selectivity are achieved simultaneously, overcoming the trade-off effect. Furthermore, we demonstrate the broad applicability of the microflow strategy across various aromatic nitration processes.
Article Details
Authors (9)
Jing Song
Yongqi Pan
Ruobing Xin
Zifei Yan
Tianyao Tang
Kai Wang
Yujun Wang
State Key Laboratory of Chemical Engineering and Low-Carbon Technology, Department of Chemical Engineering
Jian Deng
Guangsheng Luo
State Key Laboratory of Chemical Engineering and Low-Carbon Technology, Department of Chemical Engineering