Viscosity Modification of Polymerizable Bicontinuous Microemulsion by Controlled Radical Polymerization for Membrane Coating Applications.

controlled radical polymerization membrane coating polymerizable bicontinuous microemulsion viscosity modification wastewater treatment

Journal

Membranes
ISSN: 2077-0375
Titre abrégé: Membranes (Basel)
Pays: Switzerland
ID NLM: 101577807

Informations de publication

Date de publication:
21 Sep 2020
Historique:
received: 12 08 2020
revised: 07 09 2020
accepted: 15 09 2020
entrez: 24 9 2020
pubmed: 25 9 2020
medline: 25 9 2020
Statut: epublish

Résumé

Membrane modification is becoming ever more relevant for mitigating fouling phenomena within wastewater treatment applications. Past research included a novel low-fouling coating using polymerizable bicontinuous microemulsion (PBM) induced by UV-LED polymerization. This additional cover layer deteriorated the filtration capacity significantly, potentially due to the observed high pore intrusion of the liquid PBM prior to the casting process. Therefore, this work addressed an innovative experimental protocol for controlling the viscosity of polymerizable bicontinuous microemulsions (PBM) before casting on commercial ultrafiltration (UF) membranes. Prior to the coating procedure, the PBM viscosity modulation was carried out by controlled radical polymerization (CRP). The regulation was conducted by introducing the radical inhibitor 2,2,6,6-tetramethylpiperidine 1-oxyl after a certain time (CRP time). The ensuing controlled radical polymerized PBM (CRP-PBM) showed a higher viscosity than the original unpolymerized PBM, as confirmed by rheological measurements. Nevertheless, the resulting CRP-PBM-cast membranes had a lower permeability in water filtration experiments despite a higher viscosity and potentially lower pore intrusion. This result is due to different polymeric structures of the differently polymerized PBM, as confirmed by solid-state nuclear magnetic resonance (NMR) investigations. The findings can be useful for future developments in the membrane science field for production of specific membrane-coating layers for diverse applications.

Identifiants

pubmed: 32967339
pii: membranes10090246
doi: 10.3390/membranes10090246
pmc: PMC7557819
pii:
doi:

Types de publication

Journal Article

Langues

eng

Subventions

Organisme : European Union Horizon 2020
ID : 689427

Références

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Auteurs

Ephraim Gukelberger (E)

Laboratory of Industrial and Synthetic Organic Chemistry (LISOC), Department of Chemistry and Chemical Technologies, University of Calabria, 87036 Rende (CS), Italy.
Center of Applied Research (CAR), Karlsruhe University of Applied Sciences, 76133 Karlsruhe, Germany.
Institute on Membrane Technology, National Research Council (ITM-CNR), 87036 Rende (CS), Italy.

Christian Hitzel (C)

Center of Applied Research (CAR), Karlsruhe University of Applied Sciences, 76133 Karlsruhe, Germany.

Raffaella Mancuso (R)

Laboratory of Industrial and Synthetic Organic Chemistry (LISOC), Department of Chemistry and Chemical Technologies, University of Calabria, 87036 Rende (CS), Italy.

Francesco Galiano (F)

Institute on Membrane Technology, National Research Council (ITM-CNR), 87036 Rende (CS), Italy.

Mauro Daniel Luigi Bruno (MDL)

Department of Physics, University of Calabria, 87036 Rende (CS), Italy.

Roberto Simonutti (R)

Department of Materials Science, University of Milan-Bicocca, 20126 Milan, Italy.

Bartolo Gabriele (B)

Laboratory of Industrial and Synthetic Organic Chemistry (LISOC), Department of Chemistry and Chemical Technologies, University of Calabria, 87036 Rende (CS), Italy.
Institute on Membrane Technology, National Research Council (ITM-CNR), 87036 Rende (CS), Italy.

Alberto Figoli (A)

Institute on Membrane Technology, National Research Council (ITM-CNR), 87036 Rende (CS), Italy.

Jan Hoinkis (J)

Center of Applied Research (CAR), Karlsruhe University of Applied Sciences, 76133 Karlsruhe, Germany.

Classifications MeSH