ACS Appl Mater Interfaces. 2018 Jul 18;10(28):24149-24156. doi: 10.1021/acsami.8b06877. Epub 2018 Jul 9.
It has been a big challenge to separate oil slicks from oil-polluted water sources efficiently and in an environmentally friendly way. Three-dimensional (3D) hydrophobic and superoleophilic materials have great potential in water separation continually. In this study, we developed a facile two-step strategy for fixing functionalized nanoparticles on 3D complex macroscopic surfaces. By using commercial glue to immobilize different types of nanoparticles on the surfaces of various 3D objects, superhydrophobic copper foam, cotton wool, and polyurethane (PU) sponge with strong stability and excellent performance were prepared. Owing to flexible fixing with the glue, the prepared PU sponge remained superhydrophobic after 950 mechanical compression cycles, 250 cycles of absorption/squeezing, or soaking in n-dodecane for 60 h. The prepared PU sponge was applied to the rapid absorption of clean oil on a water surface, and the feasibility of separating mixed oil through capillary separation of cavernous bodies was examined. Furthermore, the method for loading nanoparticles onto a 3D structure can be used with many self-cleaning, flexible electrodes and catalysts.
从油污染水源中高效且环保地分离油层一直是一个巨大的挑战。三维(3D)疏油和亲水材料在水分离方面具有巨大的潜力。在这项研究中,我们开发了一种简便的两步策略,用于将功能化纳米粒子固定在 3D 复杂宏观表面上。通过使用商业胶将不同类型的纳米粒子固定在各种 3D 物体的表面上,制备了具有强稳定性和优异性能的超疏水铜泡沫、棉绒和聚氨酯(PU)海绵。由于与胶水的灵活固定,所制备的 PU 海绵在经过 950 次机械压缩循环、250 次吸收/挤压循环或在正十二烷中浸泡 60 h 后仍保持超疏水性。所制备的 PU 海绵被应用于水面上的清洁油的快速吸收,并检验了通过多孔体的毛细分离来分离混合油的可行性。此外,将纳米粒子负载到 3D 结构上的方法可以与许多自清洁、灵活的电极和催化剂一起使用。