Abstract
Microplastic-oil co-contaminants have raised high environmental concerns due to their persistence and synergistic toxicity. However, conventional separation membranes, typically designed for single-pollutant removal, are ineffective against such complex systems. Moreover, the strong interfacial interactions between microplastics and oil promote aggregate formation, leading to severe membrane fouling and compromised separation performance. Herein, we present a robust, antifouling, and superhydrophilic membrane fabricated via sodium periodate-assisted co-deposition of caffeic acid and ε-polylysine for simultaneously removing both oil droplets and microplastic particles from contaminated water. The resulting caffeic acid/ε-polylysine composite superhydrophilic membrane achieves an impressive separation efficacy for various oil-in-water emulsions and polystyrene microplastics of different sizes. Notably, it exhibits superior separation performance for challenging microplastic-oil co-contaminants, with rejection of 99.89% for oil and 96.99% for 100-nm polystyrene microplastics over 300-min continuous filtration. It also sustains a high flux recovery, reflecting robust antifouling properties and thus highlighting a great potential for practical application in complex wastewater treatment. Additionally, the membrane shows a remarkable antibacterial activity even after 30 days of immersion. This study demonstrates a scalable and sustainable strategy for fabricating high-performance polyphenol-based antifouling membranes, offering an effective solution to manage these emerging co-contaminants.
| Original language | English |
|---|---|
| Article number | 6327 |
| Number of pages | 15 |
| Journal | Nature Communications |
| Volume | 17 |
| Issue number | 1 |
| Early online date | 4 Apr 2026 |
| DOIs | |
| Publication status | E-pub ahead of print - 4 Apr 2026 |
Data Availability Statement
The authors declare that all data supporting the findings of this study are available within the paper and its supplementary information files or available from the corresponding authors upon request.Funding
This work was supported by National Natural Science Foundation of China (Grant No.: 22378389), China Scholarship Council of the Ministry of Education (CSC grant No.: 202206650006), National Natural Science Foundation of China-Regional Innovation Development Joint Fund (Grant No.: U24A2096), Jiangxi Provincial Natural Science Foundation (Grant No.: 20252BAC240291; 20242BAB23019), Jiangxi Province International Science and Technology Cooperation Project (Grant No.: 20253BDH410010), Ganpo Yingcai program of Jiangxi Province (Grant No.: gpyc20250071), Fujian Clinical Research Center for Aptamer-based Precision Testing (Grant No.: 2021Y2017) and a start-up fund for researchers of Jiangxi University of Science and Technology (Grant No.: 205200100721).
ASJC Scopus subject areas
- General Chemistry
- General Biochemistry,Genetics and Molecular Biology
- General
- General Physics and Astronomy
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