Pusan National University Study Advances Solar Desalination with Multifunctional Membrane
Researchers develop an innovative membrane technology to sustainably address challenges associated with desalination
However, seawater contains more than just salt. Coastal waters near ports and industrial areas are often contaminated with oil, which can clog the specialized membranes used in desalination systems. Although many experimental desalination platforms have shown promising results, most have been tested using clean saltwater under laboratory conditions. Thus, it remains unclear how well they would actually perform with real-world seawater.
To address this challenge, a research team led by Professor
The proposed membrane has a 'Janus' architecture, meaning it has two sides with different properties. One side is water-attracting (hydrophilic) and made from a chitosan and polyvinyl alcohol hydrogel; it lets water through while repelling oil droplets. The other side is water-repelling (hydrophobic) and contains copper oxide nanoparticles wrapped in a carbon shell, embedded in a nanofiber layer. This side absorbs sunlight, converts it into heat, and drives water evaporation at its surface. Because each layer focuses on one task, oil rejection and heat generation do not interfere with each other, which can happen in single-layer designs.
Experiments revealed that the proposed membrane removed over 99.99% of oil from contaminated seawater while maintaining stable performance against different oil droplet sizes and repeated use. During solar desalination, it achieved an evaporation rate of 1.29 kilograms of water per square meter per hour, which is nearly three times higher than that of a conventional single-layer membrane. "By harnessing renewable solar energy and integrating contaminant separation with freshwater production in a single membrane platform, our technology has the potential to reduce energy consumption, operational complexity, and secondary waste generation, contributing to more sustainable water treatment and freshwater production," says
The researchers believe that the membrane developed in this study highlights a broader design strategy for future water treatment technologies, as
Further research in this field will hopefully lead to a future in which freshwater is easily accessible everywhere in the world.
Reference
Title of original paper: | Dual-functional asymmetric CuO@NC-based Janus hydrogel membrane for integrated oil–water separation and solar-driven desalination for sustainable use |
Journal: | Desalination |
DOI: |
About Pusan National University
Website: https://www.pusan.ac.kr/eng/Main.do
Media Contact:
Goon-Soo Kim
82 51 510 7928
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SOURCE Pusan National University
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