Saleh Tawfik A, Baig Nadeem, Alghunaimi Fahd I, Aljuryyed Norah W
Chemistry Department, King Fahd University of Petroleum & Minerals Dhahran 31261 Saudi Arabia
Saudi Aramco, Research & Development Center, Oil & Gas Treatment R&D Division Dhahran 31311 Saudi Arabia.
RSC Adv. 2020 Jan 31;10(9):5088-5097. doi: 10.1039/c9ra06579b. eCollection 2020 Jan 29.
The development of stable 3D surfaces for oil/water separation has been of great interest to researchers. Inspired by the lotus leaf, in this study, a superhydrophobic stable and robust surface was generated by the combination of -octadecyltrichlorosilane, silica, polypyrrole and polyurethane (ODTCS-SiO-PP-PU). The constructed 3D network displayed superhydrophobic and superoleophilic behavior with a high water contact angle of 154.7° ± 0.8°. The superhydrophobic behavior of the porous material was found to be stable for months. Apart from the hydrophobicity analysis of the material, the various forms of the materials were investigated scanning electron microscopy (SEM), Fourier-transform infrared spectroscopy (FTIR), and energy-dispersive X-ray spectroscopy (EDX). Under the force of gravity, hexane displayed an exceptionally high flux of 102 068 Lm h through ODTCS-SiO-PP-PU. The macroporous network of ODTCS-SiO-PP-PU displayed fewer chances of fouling, which is a common issue with membranes. Moreover, its porous network displayed good absorption capacity for various non-polar organic solvents. The maximum absorption capacity observed for toluene was 34 times its own weight. The separation efficiency of various non-polar organic solvents from water was observed in the range of 99.5 to 99.8%. ODTCS-SiO-PP-PU, due to its superhydrophobicity, 3D porous network, extraordinarily high flux, good absorption capacity, and excellent separation capability, has been established as a good candidate for the separation of organic and oil contaminants from water.
开发用于油水分离的稳定三维表面一直是研究人员非常感兴趣的课题。受荷叶启发,在本研究中,通过十八烷基三氯硅烷、二氧化硅、聚吡咯和聚氨酯(ODTCS-SiO-PP-PU)的组合制备了一种超疏水、稳定且坚固的表面。构建的三维网络表现出超疏水和超亲油行为,水接触角高达154.7°±0.8°。发现该多孔材料的超疏水行为在数月内保持稳定。除了对材料进行疏水性分析外,还通过扫描电子显微镜(SEM)、傅里叶变换红外光谱(FTIR)和能量色散X射线光谱(EDX)对材料的各种形态进行了研究。在重力作用下,己烷通过ODTCS-SiO-PP-PU的通量异常高,达到102068 Lm h。ODTCS-SiO-PP-PU的大孔网络显示出较少的污染机会,而污染是膜的一个常见问题。此外,其多孔网络对各种非极性有机溶剂表现出良好的吸收能力。观察到对甲苯的最大吸收容量是其自身重量的34倍。各种非极性有机溶剂与水的分离效率在99.5%至99.8%之间。由于其超疏水性、三维多孔网络、极高的通量、良好的吸收能力和出色的分离能力,ODTCS-SiO-PP-PU已被确立为从水中分离有机和油污污染物的良好候选材料。