Binu Varghese, Yogendra Kumar, Shubhashis Sengupta, Prabal K Maiti
The selective recovery of uranyl ions from aqueous environments is important for both uranium resource utilization and environmental remediation. However, achieving high ionic selectivity in membrane-based separations without compromising water permeability remains a significant challenge. Herein, we employ molecular dynamics simulations to elucidate how covalent organic framework (COF) membranes can be engineered for selective uranyl rejection. Slipped TpPa-1 and TpPa-F4 membranes exhibit complete rejection of UO 2 2 + while allowing the passage of competing ions, whereas TpBpy and Tp-Azo exhibit only partial rejection. Both TpPa-1 and TpPa-F4 suppresses the transport of other divalent ions, such as Ca 2 + and Mg 2 + , pointing to a broader selectivity against multivalent species. Free energy calculations reveal that this selectivity originates from an energetic barrier of 3.6 kcal mol - 1 imposed by the bilayer pore environment, which selectively impedes UO 2 2 + ions without hindering the transport of water or monovalent ions. This mechanism remains effective in multilayer TpPa-1 membranes, demonstrating its robustness with increasing thickness. Collectively, these findings establish a clear structure-transport relationship in COF membranes and position slipped architectures as a viable route for uranium resource recovery and for mitigating uranium contamination in aquatic environments.