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Article: Harnessing ion resource recovery: Design of selective cation exchange membranes via a synergistic ionic control method

TitleHarnessing ion resource recovery: Design of selective cation exchange membranes via a synergistic ionic control method
Authors
KeywordsCation-π interaction
Ion resource recovery
Layer-by-layer
Monovalent selective cation exchange membrane
Polydopamine
Synergistic ionic control assisted by electric field
Issue Date1-Jun-2024
PublisherElsevier
Citation
Journal of Membrane Science, 2024, v. 704 How to Cite?
Abstract

Effective recovery of valuable ion resources such as lithium is gaining increasing importance. Monovalent selective cation exchange membranes (MCEM) used in electrodialysis have shown great potential, but their development is hampered by the classical trade-offs related to membrane permeability, selectivity and energy efficiency. We reported a new route to design high performance MCEM, utilizing the synergy of ionic control (IC) through cation-π bonding of polydopamine (PDA) and alternating current (AC), which has not been reported before. A set of deliberately controlled membrane fabrication conditions were chosen, with different ionic control (i.e., no cation, K+, Li+) and with/without AC for systematic comparison. Combining with morphology & electrochemical measurements, the membrane with electro-assisted K+ control, i.e., PDAM-K+/AC, exhibited respective 72 % and 51 % higher Li+ and K+ transport rate, higher permselectivity of 9.54 (Li+/Mg2+) and 17.86 (K+/Mg2+), and 3.3-fold lower surface electrical resistance (SER) compared to other modified membranes (e.g., PDAM). Also, PDAM-K+/ AC exhibited no sign of scaling, supported by its much increased limiting current density. The results supported the hypothesis of the synergistic effect between cation-π bonding and AC electro-deposition, which altered the polymerization dynamics and produced more ordered membrane structure. The control strategy showed a viable route to fabricate ion exchange membranes for imparting monovalent selectivity, reducing scaling and avoiding energy penalty.


Persistent Identifierhttp://hdl.handle.net/10722/350912
ISSN
2023 Impact Factor: 8.4
2023 SCImago Journal Rankings: 1.848

 

DC FieldValueLanguage
dc.contributor.authorRuya, Petric Marc-
dc.contributor.authorZhao, Yan-
dc.contributor.authorEyley, Samuel-
dc.contributor.authorThielemans, Wim-
dc.contributor.authorVolodine, Alexander-
dc.contributor.authorWenten, I. Gede-
dc.contributor.authorYang, Xing-
dc.date.accessioned2024-11-06T00:30:36Z-
dc.date.available2024-11-06T00:30:36Z-
dc.date.issued2024-06-01-
dc.identifier.citationJournal of Membrane Science, 2024, v. 704-
dc.identifier.issn0376-7388-
dc.identifier.urihttp://hdl.handle.net/10722/350912-
dc.description.abstract<p>Effective recovery of valuable ion resources such as lithium is gaining increasing importance. Monovalent selective cation exchange membranes (MCEM) used in electrodialysis have shown great potential, but their development is hampered by the classical trade-offs related to membrane permeability, selectivity and energy efficiency. We reported a new route to design high performance MCEM, utilizing the synergy of ionic control (IC) through cation-π bonding of polydopamine (PDA) and alternating current (AC), which has not been reported before. A set of deliberately controlled membrane fabrication conditions were chosen, with different ionic control (i.e., no cation, K+, Li+) and with/without AC for systematic comparison. Combining with morphology & electrochemical measurements, the membrane with electro-assisted K+ control, i.e., PDAM-K+/AC, exhibited respective 72 % and 51 % higher Li+ and K+ transport rate, higher permselectivity of 9.54 (Li+/Mg2+) and 17.86 (K+/Mg2+), and 3.3-fold lower surface electrical resistance (SER) compared to other modified membranes (e.g., PDAM). Also, PDAM-K+/ AC exhibited no sign of scaling, supported by its much increased limiting current density. The results supported the hypothesis of the synergistic effect between cation-π bonding and AC electro-deposition, which altered the polymerization dynamics and produced more ordered membrane structure. The control strategy showed a viable route to fabricate ion exchange membranes for imparting monovalent selectivity, reducing scaling and avoiding energy penalty.</p>-
dc.languageeng-
dc.publisherElsevier-
dc.relation.ispartofJournal of Membrane Science-
dc.rightsThis work is licensed under a Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International License.-
dc.subjectCation-π interaction-
dc.subjectIon resource recovery-
dc.subjectLayer-by-layer-
dc.subjectMonovalent selective cation exchange membrane-
dc.subjectPolydopamine-
dc.subjectSynergistic ionic control assisted by electric field-
dc.titleHarnessing ion resource recovery: Design of selective cation exchange membranes via a synergistic ionic control method-
dc.typeArticle-
dc.identifier.doi10.1016/j.memsci.2024.122844-
dc.identifier.scopuseid_2-s2.0-85192821783-
dc.identifier.volume704-
dc.identifier.eissn1873-3123-
dc.identifier.issnl0376-7388-

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