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◆ Science Advances2026-07-31· Membrane

Electrochemically tailored ion-trapping nanoarchitectures in COF membranes for selective monovalent/divalent ion sieving

Jing Wang, Pengrui Jin, Ziwen Dai, Hao Tan, Huying Li, Sha Liang, Jiakuan Yang, Shushan Yuan

原始摘要(英文原文)· Original abstract
The efficient separation of monovalent and divalent ions remains a core challenge in desalination and ion resource recovery. Here, we propose an electrochemical confinement strategy to spatially organize EDTA into aligned arrays within the one-dimensional transport channels of TFP-Tag membrane with a pore size of 1.1 nm. This structure establishes a biomimetic, gradient-functionalized conical nanochannel. The negatively charged upper channel regions capture and block divalent ions, while the lower regions with their larger pore size and an anion-affinitive local environment facilitate monovalent ion transport, thereby achieving highly selective monovalent/divalent ion separation. The membrane exhibits outstanding monovalent/divalent ion separation performance in multi-ion mixed solutions, with Na + flux reaching 10.6 mmol m −2 hour −1 and the selectivity of Na + /Mg 2+ exceeding 500. This breakthrough separation behavior is attributed to an induced transport lag effect arising from the synergy between the COF structure and the chelation-assisted retardation of divalent ions by EDTA. This study establishes a theoretical framework for the rational design of ion-separation membranes exhibiting simultaneous high-selectivity and high-flux performance.
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Electrochemically tailored ion-trapping nanoarchitectures in COF membranes for selective monovalent/divalent ion sieving — 科研速览 Science Skim