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Publication Additional Information Download
Publication Type
Journal Article
Authorship
Halali, M. A., Charles-Francois de Lannoy
Title
Methods for Investigating the Stability of Electrically Conductive Membranes
Year
2022
Publication Outlet
MethodsX
DOI
https://doi.org/10.1016/j.mex.2022.101627
Citation
Halali, M. A., Charles-Francois de Lannoy, Methods for Investigating the Stability of Electrically Conductive Membranes, MethodsX, 2022
Abstract
The surface properties of electrically conductive membranes (ECMs) govern their advanced abilities. During operation, these properties may differ considerably from their initially measured properties. Depending on their operating conditions, ECMs may undergo various degrees of passivation. ECM passivation can detrimentally impact their real time performance, causing large deviations from expected behaviour based on their initially measured properties. Quantifying these changes will enable consistent performance comparisons across the active and electrically conductive membrane research field. As such, consistent methods must be established to quantify ECM membrane properties. In this work, we proposed three standardized methods to assess the electrochemical, chemical, and physical stability of such membrane coatings: 1) electrochemical oxidation, 2) surface scratch testing, and 3) pressurized leaching. ECMs were synthesized by the most common approach – coating support ultrafiltration (UF) and/or microfiltration (MF) polyethersulfone (PES) membranes with carbon nanotubes (CNT) cross-linked with polyvinyl alcohol (PVA) and two types of cross-linkers (either succinic acid (SA) or glutaraldehyde (GA)). We then evaluated these ECMs based on the three standardized methods: 1) We evaluated electrochemical stability as a function of electro-oxidation induced by applying anodic potentials. 2) We measured the scratch resistance to quantify the surface mechanical stability. 3) We measured physical stability by quantifying the leaching of PVA during separation of a model foulant (polyethylene oxide (PEO)). Our methods can be extended to all types of electrically conductive membranes including MF, UF, nanofiltration (NF), and reverse osmosis (RO) ECMs. We propose that these fundamental measurements are critical to assessing the viability of ECMs for industrial MF, UF, NF, and RO applications.
•Anodic-oxidation was used to check the electrochemical stability of ECMs
•Depth of penetration resulted from scratch test is an indicator of the electrically conductive membrane coating's mechanical stability
•The leaching of the main components forming the nanolayer was quantified to assess the membranes’ physical stability
Program Affiliations
GWF: Global Water Futures
Project Affiliations
GWF-SSSWQM: Sensors and Sensing Systems for Water Quality Monitoring
Publication Stage
Published
Additional Information
Sensor and Sensing Systems for Water Quality Monitoring 2, Refereed Publications
Download Links
https://doi.org/10.1016/j.mex.2022.101627
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