Jiang Xian, Liu Bing, Zeng Qinghong, Yang Fuchao, Guo Zhiguang
Ministry of Education Key Laboratory for the Green Preparation and Application of Functional Materials, Hubei University, Wuhan 430062, People's Republic of China.
State Key Laboratory of Solid Lubrication, Lanzhou Institute of Chemical Physics, Chinese Academy of Sciences, Lanzhou 730000, People's Republic of China.
ACS Appl Mater Interfaces. 2023 Mar 15;15(10):13700-13710. doi: 10.1021/acsami.2c21151. Epub 2023 Mar 2.
To alleviate the economic and environmental damage caused by industrial discharges of oily wastewater, materials applied for efficient oil/water separation are receiving significant attention from researchers and engineers. Among others, switchable wettable materials for bidirectional oil/water separation show great potential for practical applications. Inspired by mussels, we utilized a simple immersion method to construct a polydopamine (PDA) coating on a peony-like copper phosphate surface. Then, TiO was deposited on the PDA coating surface to build a micro-nano hierarchical structure, which was modified with octadecanethiol (ODT) to obtain a switchable wettable peony-like superhydrophobic surface. The water contact angle of the obtained superhydrophobic surface reached 153.5°, and the separation efficiency was as high as 99.84% with a flux greater than 15,100 L/(m·h) after 10 separation cycles for a variety of heavy oil/water mixtures. Notably, the modified membranes have a unique photoresponsiveness, transforming to superhydrophilic upon ultraviolet irradiation, achieving separation efficiencies of up to 99.83% and separation fluxes greater than 32,200 L/(m·h) after 10 separation cycles for a variety of light oil/water mixtures. More importantly, this switch behavior is reversible, and the high hydrophobicity can be restored after heating to achieve efficient separation of heavy oil/water mixtures. In addition, the prepared membranes can maintain high hydrophobicity under acid-base conditions and after 30 sandpaper abrasion cycles, and damaged membranes can be restored to superhydrophobicity after a brief modification in the ODT solution. This simple-to-prepare, easy-to-repair, robust membrane with switchable wettability shows great potential in the field of oil/water separation.
为减轻工业排放含油废水造成的经济和环境损害,用于高效油水分离的材料受到了研究人员和工程师的广泛关注。其中,用于双向油水分离的可切换润湿性材料在实际应用中显示出巨大潜力。受贻贝启发,我们采用简单的浸渍法在牡丹状磷酸铜表面构建聚多巴胺(PDA)涂层。然后,在PDA涂层表面沉积TiO以构建微纳分级结构,并用十八烷硫醇(ODT)对其进行改性,以获得具有可切换润湿性的牡丹状超疏水表面。所制备的超疏水表面的水接触角达到153.5°,对于多种重油/水混合物,经过10次分离循环后,分离效率高达99.84%,通量大于15100 L/(m²·h)。值得注意的是,改性后的膜具有独特的光响应性,在紫外线照射下转变为超亲水性,对于多种轻油/水混合物,经过10次分离循环后,分离效率高达99.83%,分离通量大于32200 L/(m²·h)。更重要的是,这种切换行为是可逆的,加热后可恢复高疏水性,以实现重油/水混合物的高效分离。此外,所制备的膜在酸碱条件下以及经过30次砂纸磨损循环后仍能保持高疏水性,受损的膜在ODT溶液中经过短暂改性后可恢复超疏水性。这种制备简单、易于修复、坚固且具有可切换润湿性的膜在油水分离领域显示出巨大潜力。