4.5 Article

Antifouling Conductive Composite Membrane with Reversible Wettability for Wastewater Treatment

Journal

MEMBRANES
Volume 12, Issue 6, Pages -

Publisher

MDPI
DOI: 10.3390/membranes12060626

Keywords

conductive membrane; antifouling; smart membrane; electro-responsive; reversible wettability

Funding

  1. Fundamental Research Funds for the Central Universities [2021ZY76]
  2. National Natural Science Foundation of China [52170022]
  3. State Key Joint Laboratory of Environmental Simulation and Pollution Control [20K02ESPCT]
  4. Beijing Municipal Education Commission through the Innovative Transdisciplinary Program Ecological Environment of Urban and Rural Human Settlements [GJJXK210105]

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Membrane fouling is a significant challenge for membrane separation technology. This study presents a membrane with switchable wettability, allowing for better resistance to fouling during filtration and easier cleaning during membrane cleaning. The findings highlight the importance of wettability switching in membrane filtration and suggest promising applications for this membrane.
Membrane fouling severely hinders the sustainable development of membrane separation technology. Membrane wetting property is one of the most important factors dominating the development of membrane fouling. Theoretically, a hydrophilic membrane is expected to be more resistant to fouling during filtration, while a hydrophobic membrane with low surface energy is more advantageous during membrane cleaning. However, conventional membrane materials do not possess the capability to change their wettability on demand. In this study, a stainless steel mesh-sulfosuccinate-doped polypyrrole composite membrane (SSM/PPY(AOT)) was prepared. By applying a negative or positive potential, the surface wettability of the membrane can be switched between hydrophilic and relatively hydrophobic states. Systematic characterizations and a series of filtration experiments were carried out. In the reduction state, the sulfonic acid groups of AOT were more exposed to the membrane surface, rendering the surface more hydrophilic. The fouling filtration experiments verified that the membrane is more resistant to fouling in the hydrophilic state during filtration and easier to clean in the hydrophobic state during membrane cleaning. Furthermore, Ca2+ and Mg2+ could complex with foulants, aggravating membrane fouling. Overall, this study demonstrates the importance of wettability switching in membrane filtration and suggests promising applications of the SSM/PPY(AOT) membrane.

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