College of Chemistry and Chemical Engineering, Northeast Petroleum University, Daqing, 163318, China; Guangzhou Key Laboratory of Environmental Catalysis and Pollution Control, School of Environmental Science and Engineering, Institute of Environmental Health and Pollution Control, Guangdong University of Technology, Guangzhou 510006, China.
College of Chemistry and Chemical Engineering, Northeast Petroleum University, Daqing, 163318, China.
J Colloid Interface Sci. 2019 Nov 1;555:569-582. doi: 10.1016/j.jcis.2019.08.011. Epub 2019 Aug 5.
Single-stage oil/water separation membranes usually suffer from weak chemical stability, susceptible mechanical damage and relatively low permeating flux, and the sophisticated preparation processes also limit their massive utilization. In this work, Cu(OH) nanoneedles coated copper mesh (CM) is prepared by simple and eco-friendly anodic oxidation at a current density of 4 mA/cm for 6 min, which is the most efficient route reported so far. The mesh exhibits outstanding superhydrophilicity and underwater superoleophobicity towards various oils with contact angles up to 164.9°, achieving superior oil/water separation efficiency of above 99.5% and ultrahigh permeating flux of 191 160 L·mh solely driven by gravity. Impressively, the Cu(OH)/CM demonstrates excellent chemical stability and anti-fouling performance when exposed to acidic and strongly alkaline solutions, saturated NaCl solution and various organic solvents. High durability to withstand mechanical challenges, e.g. high-power sonication and sand abrasion, is experimentally confirmed owing to strong cohesional strength of Cu(OH) nanoneedles on CM surface. Importantly, the Cu(OH)/CM exhibits favorable long-term recyclability with stable microstructure morphologies even after 50 cycles. These distinct advantages endow the Cu(OH)/CM to be an ideal candidate to efficiently separate oil pollutants from water. The oil/water separation mechanisms are proposed based on the concept of intrusion pressure.
单级油水分离膜通常存在化学稳定性差、机械强度弱和渗透通量低等问题,复杂的制备工艺也限制了其大规模应用。在这项工作中,通过电流密度为 4 mA/cm 的简单环保阳极氧化法在 6 分钟内制备了 Cu(OH)纳米针涂层铜网(CM),这是迄今为止报道的最有效的方法。该网表现出优异的超亲水性和水下超疏油性,对各种油的接触角高达 164.9°,仅在重力作用下就实现了超过 99.5%的超高油水分离效率和超高渗透通量 191160 L·mh。令人印象深刻的是,Cu(OH)/CM 在暴露于酸性和强碱性溶液、饱和 NaCl 溶液和各种有机溶剂中时表现出优异的化学稳定性和抗污性能。由于 Cu(OH)纳米针在 CM 表面的强大内聚强度,实验证实了其对机械挑战的高耐用性,例如高功率超声和砂磨。重要的是,即使经过 50 次循环,Cu(OH)/CM 仍表现出良好的长期可循环性,其微观结构形态稳定。这些独特的优势使 Cu(OH)/CM 成为从水中有效分离油污染物的理想选择。根据侵入压力的概念提出了油水分离机制。