Robust and multifunctional 3D superhydrophilic/superoleophobic sponge for rapid oil/water separation and water purification

超亲水性 材料科学 海绵 饮用水净化 化学工程 复合材料 润湿 环境工程 环境科学 植物 工程类 生物
作者
Qingyun Li,Kai Yan,Shan‐Shan Li,Mengqi Wang,Ke Liu,Ming Xia,Qin Cheng,Xu Jia,Shanshan He,Yan Zhao,Mufang Li,Yi Wu
出处
期刊:Progress in Organic Coatings [Elsevier BV]
卷期号:192: 108427-108427
标识
DOI:10.1016/j.porgcoat.2024.108427
摘要

Advanced materials that possess distinguishable superwettability have been extensively applied for oil/water separation. Among them, superhydrophilic/superoleophobic materials are defined as a water contact angle <5° and an oil contact angle >150°, are considered as the ideal candidate for oil/water separation because of their superior antioil-fouling. However, there are two main issues that need to be addressed for superhydrophilic/superoleophobic materials: (1) Two-dimensional (2D) superhydrophilic/superoleophobic materials are time-consuming and unable to obtain high fluxes during oil/water separation; (2) The reported three-dimensional (3D) superhydrophilic/superoleophobic materials are often ineffective for separating emulsions with size <20 μm, thus cannot obtain balance between high throughput and successful separation of different types of oil/water mixtures. In addition, in complex real-world wastewater environment, such materials cannot remove water-soluble organic pollutants existed in industrial wastewater, which restrict the practical use requirements in water purification. Herein, a robust and multifunctional superhydrophilic/superoleophobic sponge integrated with a photocatalysis property was fabricated by the combination of the amphoteric fluorosurfactant FS-50 and titanium dioxide (TiO2) nanoparticles on the sponge surface. The as-prepared sponge not only showed high water flux of 13,735 L m2 h−1 and 1754 L m2 h−1 for immiscible oil/water mixtures and oil-in-water emulsion, respectively, but also could continuously reuse with an almost constant flux arised from their superior antioil-fouling. Notably, benefiting from the photocatalysis property of titanium dioxide and adsorption property of porous sponge, contaminated water can be completely degraded and purified under ultraviolet (UV) irradiation.
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