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- W4387302893 abstract "Advancing lithium recovery from brine through highly selective membrane-capacitive deionization (M-CDI) and real-time monitoring using miniature solid-state lithium sensorsAbstractIn the 21st century, two pivotal requirements for lithium recovery should be met: 1) lithium recovery from brine and 2) real-time in-situ lithium concentration monitoring. This study develops a state-of-the-art polyelectrolyte multilayer ion selective membrane (PEM-ISM) sensor focusing lithium in the brine. The mm-sized S-ISM sensors were made by precisely electrospraying a well-mixed lithium ionophore cocktail matrix and then dipping deposition polycation (Poly(allylamine hydrochloride) and polyanion (poly(sodium 4-styrenesulfonate)) for enhanced adhesion and stable structure onto the electrode surface. And also, PEM-ISM sensor was incorporated with M-CDI for the first time to record the lithium concentration changes with adsorption/desorption cycles. Tests results indicated that PEM-ISM sensors possessed excellent selectivity, accuracy, and stability to record the lithium concentrations. In summary, the integration of novel Li sensor with M-CDI has a great potential to advance Li recovery from brine wastewater and determine the maximum capacity of M-CDI, and ultimately elevate lithium recovery efficiency.This study develops a state-of-the-art polyelectrolyte multilayer ion selective membrane (PEM-ISM) sensor focusing lithium in the brine. And also, PEM-ISM sensor was incorporated with M-CDI for the first time to record the lithium concentration changes with adsorption/desorption cycles.SpeakerXiang, WenjunPresentation time16:30:0017:00:00Session time15:30:0017:00:00SessionWater Reuse and Resource Recovery: Brines, Trains, and (EV) AutomobilesSession locationRoom S504c - Level 5TopicIntermediate Level, Resilience, Disaster Planning and Recovery, Sustainability and Climate Change, Water Reuse and ReclamationTopicIntermediate Level, Resilience, Disaster Planning and Recovery, Sustainability and Climate Change, Water Reuse and ReclamationAuthor(s)Zhang, MiAuthor(s)M. Zhang <sup>1</sup>; J. Buslewicz <sup>2 </sup>; W. Xiang <sup>3</sup>; J. Contreras <sup>4</sup>; X. Wang <sup>1</sup>; Y. Fan <sup>5</sup>; J. McCutcheon <sup>6</sup>; B. Li <sup>6</sup>; M. Zhang <sup>1</sup>;Author affiliation(s)Department of Chemical & Biomolecular Engineering, University of Connecticut, Storrs, CT, USA <sup>1</sup>; Department of Civil and Environmental Engineering, University of Connecticut <sup>2 </sup>; Department of Civil and Environmental Engineering, University of Connecticut <sup>3</sup>; Department of Civil and Environmental Engineering, University of Connecticut <sup>4</sup>; Department of Civil and Environmental Engineering, University of Connecticut <sup>1</sup>; Department of Civil and Environmental Engineering, University of Connecticut <sup>5</sup>; Department of Chemical & Biomolecular Engineering, University of Connecticut <sup>6</sup>; Department of Civil and Environmental Engineering, University of Connecticut <sup>6</sup>;SourceProceedings of the Water Environment FederationDocument typeConference PaperPublisherWater Environment FederationPrint publication date Oct 2023DOI10.2175/193864718825159054Volume / Issue Content sourceWEFTECCopyright2023Word count20" @default.
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- W4387302893 date "2023-10-02" @default.
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- W4387302893 title "Advancing lithium recovery from brine through highly selective membrane-capacitive deionization (M-CDI) and real-time monitoring using miniature solid-state lithium sensors" @default.
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