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Published on: February 13, 2016
Electro-Induced Coordination Reconfiguration Strategy Guiding Water State Evolution against Gel-like Fouling in
Linhua Rao1, Jiajian Xing1, Gaoliang Wei1
1Key Laboratory of Industrial Ecology and Environmental Engineering (Ministry of Education, MOE), School of Environmental Science and Technology, Dalian University of Technology, Dalian 116024, China.
Abstract:
Ultrafiltration (UF) is a prominent technology for efficiently treating surface water, but the conventional UF process suffers from severe gel-like membrane fouling induced by natural organic matter (NOM) and coexisting multivalent cations. Here, we propose an electro-induced coordination reconfiguration (EICR) guiding water state evolution strategy for mitigating gel-like membrane fouling by applying potential to the prepared electrically conductive carbon nanotube polyvinylidene fluoride hollow fiber membrane (CNT-PVDF HFM). Comprehensive in situ electrochemical experiments and theoretical simulations reveal that the EICR strategy disrupted the coordination between NOM and multivalent cations, preventing the formation of a cross-linking porous network hydrogel structure and thereby releasing water molecules from steric constraints. The interfacial water state undergoes a transition from interstitial water to free water, facilitating the permeation of water molecules across the foulant layer. The decrease in filtration resistance of water state evolution was estimated at 81.4% of the total reduced fouling resistance through Flory-Huggins lattice theory, suggesting its dominant role in fouling mitigation rather than conventional electrostatic repulsion. We demonstrate excellent antifouling performance in surface water treatment, with the backwashing interval of CNT-PVDF HFM membrane at -1.5 V vs Ag/AgCl being extended by 12-fold compared to the conventional commercial PVDF membrane. This study highlights the importance of guiding water state evolution in mitigating complex gel-like membrane fouling and opens a promising gateway for future development of proactive antifouling strategies.
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