首页> 外文期刊>ACS Sustainable Chemistry & Engineering >Multifunctional pH-Switched Superwetting Copolymer Nanotextile: Surface Engineered toward on-Demand Light Oil-Water Separation on Superhydrophilic-Underwater Low-Adhesive Superoleophobic Nonwoven Mesh
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Multifunctional pH-Switched Superwetting Copolymer Nanotextile: Surface Engineered toward on-Demand Light Oil-Water Separation on Superhydrophilic-Underwater Low-Adhesive Superoleophobic Nonwoven Mesh

机译:多功能pH切换的超雨衣共聚物纳米织物:表面工程化,以在超水下水下低粘合超细无纺电片上按需轻油水分离

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摘要

The high performance of an oil-water separator relies largely on unique design of the architecture with a hierarchical and porous morphology as well as smart wetting responsiveness of active materials. A well-structured NaOH treated antioil nonwoven mesh with in-situ and ex-situ pH switched wetting was successfully prepared by controlled electro-spinning of SAN copolymer followed by thermal treating in NaOH aqueous solution. The as-obtained robust and flexible pH switched antioil mesh with highly accessible pH-responsive groups and a 3D open porous network geometry not only will achieve durable superhydrophilicity/superoleophobicity in air but also a superior underwater low-adhesive superoleophobicity could be obtained, leading the surface to be successfully used for long-term usage immiscible/emulsified light oil-water separation using only gravity-driven force with excellent antioil fouling during multiple cycles. Simultaneously, the water-soluble pollutant could be effectively captured by the antioil mesh and simply released in ethanol media. The "extended coil conformation" and "intermolecular hydrogen bonding" are proposed to explain the antioil wetting behavior. Most importantly, smart reversible pH switching from antioil to antiwater wetting could be simply and quickly obtained only by immersing the NaOH-treated mesh in acidic-aqueous solution to obtain an acid-treated antiwater mesh acting in "oil removing", which is repeatedly cycled without causing any damage to the mesh and loss of pH responsiveness. It is believed that such highly cost-effective and commercially scaled up smart material will be a promising candidate for use in removal of oil-polluted waters in the future.
机译:油水分离器的高性能很大程度上依赖于具有分层和多孔形态的架构的独特设计,以及活性材料的智能润湿反应性。通过控制SAN共聚物的电纺,然后在NaOH水溶液中热处理,成功地制备了具有原位和原位pH转换润湿的结构良好的NaOH处理的抗血清无纺电片。具有高度可接近的PH响应基团的AS获得的鲁棒和柔性pH切换的ANTIOIL网格,并且3D开放多孔网络几何形状不仅将实现空气中的耐用的超级水性/超细性,而且可以获得优异的水下低粘合剂超细性,引导表面成功用于长期使用不混溶/乳化的轻油 - 水分离,其在多个循环期间具有优异的抗血清污垢。同时,可以通过抗血清网可以有效地捕获水溶性污染物并简单地在乙醇介质中释放。提出了“扩展线圈构象”和“分子间氢键”来解释润湿行为。最重要的是,通过将NaOH处理的网格浸入酸性水溶液中,可以简单快速地获得从ANTIOIL到抗水润湿的智能可逆pH切换,以获得作用于“油除载”的酸处理的抗水网,这是反复循环的酸处理的抗水网。不造成对网格的任何损害和pH值响应性的损失。据信,这种高度成本效益和商业缩放的智能材料将是未来除油污染水域的有希望的候选者。

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