Development of a fluorophilic ion-exchange material with dual binding mechanism for solid-phase extraction of PFAS

dc.contributor.authorFreilinger, Johanna
dc.contributor.authorBack, Jan O.
dc.contributor.authorPlangger, Raphael
dc.contributor.authorSchottenberger, Herwig
dc.contributor.authorHuck, Christian W.
dc.contributor.authorRupprich, Marco
dc.contributor.authorBakry, Rania
dc.date.accessioned2026-03-02T12:53:43Z
dc.date.issued2025-11
dc.description.abstractPer- and polyfluoroalkyl substances (PFAS) are persistent contaminants for which authorities worldwide have imposed limits on drinking water, groundwater and surface water. This has created challenges in PFAS detection, leading to an urgent need for reliable and selective solid-phase extraction (SPE) materials for PFAS analysis. In addressing this demand, we have tailored highly crosslinked copolymers containing 3-(1H,1H,2H,2H-perfluorooctyl)-1-vinylimidazolium chloride as a comonomer with ethylene dimethacrylate in various molar ratios. For ionic fluorosurfactants, these copolymers feature a dual binding mechanism that synergistically combines fluorophilic interactions and electrostatic attraction, enhancing selectivity and efficiency. The adsorption behavior of short- and long-chain PFAS and their recoveries were evaluated and compared to commercial SPE cartridges. Characterization revealed the highest ion-exchange capacity (412.7 ± 22 µeq g−1) for a monomer-to-crosslinker ratio of 2:1. The dynamic adsorption capacities for various PFAS ranged from 15.2 to 306 g−1. Recovery experiments consistently demonstrated high PFAS recoveries (98.8–121.6 %), while enrichment studies from wastewater confirmed its robustness in complex environmental matrices (recoveries: 90.8–99.2 %). Additionally, reusability experiments showed consistent recoveries over five cycles (recoveries: 90.34–108.0 %). The findings underscore the potential of this innovative polyelectrolyte as a selective, regenerable, and efficient alternative to conventional SPE materials, qualifying it as a superior candidate for PFAS analysis.
dc.identifier.doi10.1016/j.hazl.2025.100158
dc.identifier.issn2666-9110
dc.identifier.urihttps://irf.fhnw.ch/handle/11654/55474
dc.identifier.urihttps://doi.org/10.26041/fhnw-15308
dc.language.isoen
dc.publisherElsevier
dc.relation.ispartofJournal of Hazardous Materials Letters
dc.rights.urihttps://creativecommons.org/licenses/by/4.0/
dc.subjectPFAS
dc.subjectSolid-phase extraction
dc.subjectFluorophilic polymer
dc.subjectAdsorption
dc.subjectEnvironmental analysis
dc.subjectIon exchange
dc.subject.ddc600 - Technik, Medizin, angewandte Wissenschaften
dc.titleDevelopment of a fluorophilic ion-exchange material with dual binding mechanism for solid-phase extraction of PFAS
dc.type01A - Beitrag in wissenschaftlicher Zeitschrift
dc.volume6
dspace.entity.typePublication
fhnw.InventedHereYes
fhnw.ReviewTypeAnonymous ex ante peer review of a complete publication
fhnw.affiliation.hochschuleHochschule für Life Sciences FHNWde_CH
fhnw.affiliation.institutInstitut für Ecopreneurshipde_CH
fhnw.openAccessCategoryGold
fhnw.pagination100158
fhnw.publicationStatePublished
fhnw.strategicActionFieldZero Emission
relation.isAuthorOfPublicationcc3c5b7a-fea1-4ad6-a99d-1cdb83e47c9a
relation.isAuthorOfPublication.latestForDiscoverycc3c5b7a-fea1-4ad6-a99d-1cdb83e47c9a
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