Zhao Chunxia, Xie Hongxia, Huang Haoran, Cai Yi, Chen Zhuo, Cheng Jinbo, Xiang Dong, Li Dong, Li Zhenyu, Wu Yuanpeng
School of New Energy and Materials, Southwest Petroleum University, Chengdu 610500, China; The Center of Functional Materials for Working Fluids of Oil and Gas Field, Sichuan Engineering Technology Research Center of Basalt Fiber Composites Development and Application, Southwest Petroleum University, Chengdu 610500, China.
School of New Energy and Materials, Southwest Petroleum University, Chengdu 610500, China.
J Hazard Mater. 2024 Jul 5;472:134566. doi: 10.1016/j.jhazmat.2024.134566. Epub 2024 May 11.
Three-dimensional separation materials with robust physical/chemical stability have great demand for effective and continuous separation of immiscible oil/water mixtures and water-in-oil emulsions, resulting from chemical leakages and discharge of industrial oily wastewaters. Herein, a superelastic polystyrene-based porous material with superhydrophobicity/superoleophilicity was designed and prepared by high internal phase emulsion polymerization to meet the aforementioned requirements. A flexible and hydrophobic aminopropyl terminated polydimethylsiloxane (NH-PDMS-NH) segment was introduced into the rigid styrene-divinylbenzene copolymer through 1, 4-conjugate addition reaction with trimethylolpropane triacrylate. The addition of NH-PDMS-NH simultaneously improved the mechanical and hydrophobic properties of the porous material (the water contact angle from 141.2° to 152.2°). The material exhibited outstanding reversible compressibility (80% strain, even in liquid N environments) and superhydrophobic stability, even after being repeatedly compressed 100 times, water contact angle still remained above 150°. Meanwhile, the as-prepared material had outstanding hydrophobic stability in corrosive solutions (strong acidic, alkaline, high-salty, and even strong polar solvent), presence of mechanical interference, strong UV radiations, and high/low temperature environments. More importantly, the material could continuously and efficiently separate immiscible oil/water mixture and water-in-oil emulsions under the above conditions, showing huge potential for the large-scale remediation of complex oily wastewaters.
由于化学泄漏和工业含油废水排放,具有强大物理/化学稳定性的三维分离材料对于有效且连续地分离不混溶的油/水混合物及油包水乳液有着巨大需求。在此,通过高内相乳液聚合设计并制备了一种具有超疏水性/超亲油性的超弹性聚苯乙烯基多孔材料,以满足上述要求。通过与三羟甲基丙烷三丙烯酸酯的1,4-共轭加成反应,将柔性且疏水的氨丙基封端聚二甲基硅氧烷(NH-PDMS-NH)链段引入到刚性苯乙烯-二乙烯基苯共聚物中。NH-PDMS-NH的加入同时改善了多孔材料的机械性能和疏水性能(水接触角从141.2°提高到152.2°)。该材料表现出出色的可逆压缩性(80%应变,即使在液氮环境中)和超疏水稳定性,即使反复压缩100次后,水接触角仍保持在150°以上。同时,所制备的材料在腐蚀性溶液(强酸性、碱性、高盐甚至强极性溶剂)、存在机械干扰、强紫外线辐射以及高/低温环境下具有出色的疏水稳定性。更重要的是,该材料在上述条件下能够连续且高效地分离不混溶的油/水混合物及油包水乳液,在大规模修复复杂含油废水方面显示出巨大潜力。