Mahlangu O T, Nackaerts R, Mamba B B, Verliefde A R D
Nanotechnology and Water Sustainability (NanoWS) Research Unit, College of Engineering, Science and Technology, University of South Africa, Florida Science Campus, Roodepoort, South Africa E-mail:
Faculty of Bioscience Engineering, Department of Applied Analytical and Physical Chemistry, Ghent university, Coupure Links 653, Ghent B-9000, Belgium.
Water Sci Technol. 2017 Jul;76(3-4):501-514. doi: 10.2166/wst.2017.194.
Membrane application in water reclamation is challenged by fouling which deteriorates membrane performance in terms of permeate flux and solute rejection. Several studies focusing on antifouling membranes incorporated with nanoparticles have been carried out, but these membranes are not yet a viable solution due to their high energy requirements and inability to completely remove or degrade trace organic compounds (TOrCs). Therefore, this study aims at fabricating polyethersulfone (PES) membranes for treatment of pharmaceutical wastewater by using a unique membrane synthesis approach. PES membranes were synthesised by casting two different solutions before coagulation. Therefore, the synthesis technique was called 'double-casting phase inversion'. The membranes were impregnated with nanohybrid graphene oxide-zinc oxide (GO-ZnO) to increase their hydrophilicity, rejection of pharmaceuticals (by decreasing membrane-solute hydrophobic interactions), resistance to organic fouling and photodegradation properties. The addition of GO-ZnO increased membrane hydrophilicity and pure water permeability. The rejection of TOrCs and anti-fouling properties were also improved due to a reduction in membrane-solute and membrane-foulant hydrophobic interactions, respectively. In addition to improved TOrC rejection properties and resistance to fouling, GO-ZnO/PES membranes degraded Brilliant Black.
膜在水回收中的应用受到污染的挑战,污染会在渗透通量和溶质截留率方面降低膜的性能。已经开展了几项针对掺入纳米颗粒的抗污染膜的研究,但由于这些膜对能量的高要求以及无法完全去除或降解痕量有机化合物(TOrC),它们尚未成为可行的解决方案。因此,本研究旨在通过一种独特的膜合成方法制备用于处理制药废水的聚醚砜(PES)膜。PES膜是通过在凝固前浇铸两种不同的溶液来合成的。因此,这种合成技术被称为“双浇铸相转化”。将纳米复合氧化石墨烯-氧化锌(GO-ZnO)浸渍到膜中,以提高其亲水性、对药物的截留率(通过减少膜与溶质之间的疏水相互作用)、抗有机污染性能和光降解性能。GO-ZnO的添加提高了膜的亲水性和纯水渗透率。由于膜与溶质之间以及膜与污染物之间的疏水相互作用分别减少,TOrC的截留率和抗污染性能也得到了改善。除了提高TOrC截留性能和抗污染能力外,GO-ZnO/PES膜还能降解亮黑。