Hydration channel engineering in Tröger’s base-POP membranes for mono/multivalent cation and anion discrimination

Sustainable recovery of critical resources from complex aqueous streams is constrained by membranes that fail to combine rapid ion transport with precise mono/multivalent discrimination. Here, we report Tröger’s base-derived porous organic polymer (POP) membranes with rigid, covalently crosslinked microporous frameworks that stabilize angstrom-scale transport channels while suppressing hydration-induced swelling. These membranes render rapid monovalent-ion transport with near-complete exclusion of multivalent cations and anions, including Mg 2+ , Al 3+ , SO 4 2− , and PO 4 3− . Experiments and simulations show that steric confinement, dehydration penalties, and electrostatic interactions cooperatively raise migration barriers for multivalent ions in confined channels. The membranes achieve comprehensive mono/multivalent discrimination across both cationic and anionic systems. In multistage electrodialysis, they enable stage-amplified lithium enrichment from high-Mg brines with stable long-term operation and downstream recovery of crystalline Li 2 CO 3 . They also facilitate high-purity NaCl enrichment from simulated seawater. Overall, this platform offers a durable and energy-efficient route to selective resource recovery from complex aqueous streams.

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Publication Details

Journal
Science Advances
Published
2026-10-09
DOI
https://doi.org/10.1126/sciadv.aef9368
Primary Topic
Membrane-based Ion Separation Techniques
Type
article
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article

Hydration channel engineering in Tröger’s base-POP membranes for mono/multivalent cation and anion discrimination

Hideto Matsuyama, Yuqing Lin, Young Moo Lee, Jianguo Yu et al.
Science Advances
Membrane-based Ion Separation Techniques
article

Hydration channel engineering in Tröger’s base-POP membranes for mono/multivalent cation and anion discrimination

Hideto Matsuyama, Yuqing Lin, Young Moo Lee, Jianguo Yu, Baolong Wu, LIU Chenglin, Haopan Sun, Yan Jin, Yuzhu Sun, Ning Gan, Zhaoliang Cui
article en

Abstract

Sustainable recovery of critical resources from complex aqueous streams is constrained by membranes that fail to combine rapid ion transport with precise mono/multivalent discrimination. Here, we report Tröger’s base-derived porous organic polymer (POP) membranes with rigid, covalently crosslinked microporous frameworks that stabilize angstrom-scale transport channels while suppressing hydration-induced swelling. These membranes render rapid monovalent-ion transport with near-complete exclusion of multivalent cations and anions, including Mg 2+ , Al 3+ , SO 4 2− , and PO 4 3− . Experiments and simulations show that steric confinement, dehydration penalties, and electrostatic interactions cooperatively raise migration barriers for multivalent ions in confined channels. The membranes achieve comprehensive mono/multivalent discrimination across both cationic and anionic systems. In multistage electrodialysis, they enable stage-amplified lithium enrichment from high-Mg brines with stable long-term operation and downstream recovery of crystalline Li 2 CO 3 . They also facilitate high-purity NaCl enrichment from simulated seawater. Overall, this platform offers a durable and energy-efficient route to selective resource recovery from complex aqueous streams.

Science AdvancesVol. 12(41)
Nanjing Tech University (CN), East China University of Science and Technology (CN), Hanyang University (KR), Kobe University (JP)
Openalex Percentile: Top 24%
Membrane-based Ion Separation Techniques
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Hydration channel engineering in Tröger’s base-POP membranes for mono/multivalent cation and anion discrimination — Hideto Matsuyama, Yuqing Lin, et al. · Science Advances (2026) | TGRS Research Map | TGRS