A novel bird-nest-like air superoleophobic/superhydrophilic Cu(OH)2-based composite coating for efficient oil–water separation

Zhiwei ZENG, Xinzhu WU, Yan LIU, Lulu LONG, Bo WANG, Lilin WANG, Gang YANG, Xiaohong ZHANG, Fei SHEN, Yanzong ZHANG

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Front. Mater. Sci. ›› 2022, Vol. 16 ›› Issue (2) : 220602. DOI: 10.1007/s11706-022-0602-z
RESEARCH ARTICLE
RESEARCH ARTICLE

A novel bird-nest-like air superoleophobic/superhydrophilic Cu(OH)2-based composite coating for efficient oil–water separation

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Abstract

An air superoleophobic/superhydrophilic composite coating with a unique structure was fabricated by oxidation and further modification of the copper mesh, and its design principle was clarified. This unique bird-nest-like configuration gives it instant superhydrophilicity due to the high surface roughness and high polar surface free energy components, while air superoleophobicity is caused by its extremely low dispersive surface free energy components. Furthermore, a water-resistance mechanism was proposed whereby a polyelectrolyte plays a critical role in improving the water-resistance of fluorosurfactants. It can separate oil–water mixtures with high efficiency (98.72%) and high flux (25185 L·m−2·h−1), and can be reused. In addition, our composite coating had certain anti-acid, anti-alkali, anti-salt and anti-sand impact performance. More importantly, after being soaked in water for a long time or being exposed to the air for a long time, it still retained ultra-high air oil contact angle and showed excellent stability, which provided the possibility for practical applications. Thus, these findings offer the potential for significant practical applications in managing oily wastewater and marine oil spill incidents.

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Keywords

dispersion force / surface tension / free energy / water resistance / oily wastewater

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Zhiwei ZENG, Xinzhu WU, Yan LIU, Lulu LONG, Bo WANG, Lilin WANG, Gang YANG, Xiaohong ZHANG, Fei SHEN, Yanzong ZHANG. A novel bird-nest-like air superoleophobic/superhydrophilic Cu(OH)2-based composite coating for efficient oil–water separation. Front. Mater. Sci., 2022, 16(2): 220602 https://doi.org/10.1007/s11706-022-0602-z

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Disclosure of potential conflicts of interest

The authors declare that they have no conflict of interest.

Acknowledgements

This work was supported by the Science and Technology Department of Sichuan Province (2021YFG0275).

Electronic supplementary information

Supplementary materials can be found in the online version at https://doi.org/10.1007/s11706-022-0602-z, which are associated with this work.

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