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Performance of PVDF Based Membranes with 2D Materials for Membrane Assisted-Crystallization Process
Mirko Frappa1, Francesca Macedonio1, Annarosa Gugliuzza1
1Institute on Membrane Technology, National Research Council of Italy (CNR-ITM), via Bucci 17/C, 87036 Rende, Italy.
Membranes
|April 30, 2021
Summary
This study developed advanced composite membranes for membrane crystallization, enhancing freshwater recovery from saline solutions. Bismuth telluride composite membranes showed the highest water flux and produced uniform salt crystals.
Area of Science:
- Materials Science
- Chemical Engineering
- Water Treatment Technologies
Background:
- Membrane crystallization (MCr) offers a novel approach for freshwater recovery and salt production from desalination brine.
- Developing efficient composite membranes is crucial for optimizing MCr performance.
Purpose of the Study:
- To fabricate and evaluate composite polymeric membranes incorporating graphene and bismuth telluride for membrane crystallization.
- To compare the performance of these novel membranes against pristine membranes.
Main Methods:
- Fabrication of composite membranes using graphene and bismuth telluride inks via wet-jet milling (WJM) technology.
- Incorporation of 2D materials into PVDF membranes.
- Performance evaluation in membrane crystallization experiments using 5 M NaCl solution.
Main Results:
- PVDF membranes with 7% bismuth telluride achieved the highest flux (3.9 L∙m⁻²h⁻¹).
- Composite membranes produced more uniform NaCl crystals compared to pristine membranes, particularly with few-layer graphene.
- All membranes demonstrated high salt rejection (>99.9%), with graphene membranes reaching 99.99%.
Conclusions:
- Composite membranes show significant potential for efficient freshwater recovery and salt production via MCr.
- The developed membranes exhibit excellent salt rejection and flux, without wetting phenomena during tests.
- Graphene and bismuth telluride integration enhances membrane performance for MCr applications.

