Related Experiment Video
Updated: Aug 27, 2026

Ion-Exchange Membranes for the Fabrication of Reverse Electrodialysis Device
Published on: July 20, 2021
Electrospray-engineered Magnetic-Carbon/Polypyrrole Nanocomposite-embedded Janus Membrane in Photothermal Membrane
Dian Qoriati1, Ade Lila Arale2, Ya-Fen Wang3
1Department of Civil Engineering, Chung Yuan Christian University, Zhongli District, Taoyuan City, 32023, Taiwan; Center for Environmental Risk Management, Chung Yuan Christian University, Zhongli District, Taoyuan City, 32023, Taiwan.
Abstract:
Photothermal membrane distillation (PMD) has been widely explored for desalination, but its application for polluted groundwater remediation remains largely unexplored. In this study, a low-cost Janus Fe3O4@C/PPy-PVDF membrane was initially fabricated, featuring a hydrophilic top layer of Fe3O4@C/PPy nanoparticles for enhanced photothermal conversion and a hydrophobic PDMS-coated PVDF bottom layer for selective vapor transport. The Fe3O4@C/PPy composite synergistically combines Fe3O4 core semiconductor relaxation, carbon shell lattice relaxation, and PPy polaron/bipolaron transitions, enabling efficient light-to-heat conversion and rapid surface evaporation. Janus architecture facilitates continuous water replenishment, suppresses temperature and concentration polarization, and shortens vapor transport pathways. The optimized membrane (M23) achieved a maximum flux of 0.67 kg m-2 h-1 and photothermal evaporation efficiency of 41.92% under 1 kW m-2 irradiation using polluted groundwater. For desalination performance, it achieved a 1.02 kg m-2 h-1 flux and 64% photothermal evaporation efficiency. The integrated MF-ADS-PMD process acquired the highest flux of 0.90 kg m-2 h-1, photothermal evaporation efficiency of 56.78%, and >99.7% chromium rejection from polluted groundwater. This study demonstrates that janus Fe3O4@C/PPy-PVDF membrane provides a sustainable and efficient PMD process for heavy metal-contaminated groundwater remediation, expanding the application of PMD beyond conventional desalination.

