Key Lab of Eco-restoration of Regional Contaminated Environment, Ministry of Education, Shenyang University, Shenyang 110044, China.
Key Lab of Industrial Ecology and Environmental Engineering, Ministry of Education, School of Environmental Science and Technology, Dalian University of Technology, Dalian 116023, China.
J Colloid Interface Sci. 2017 Nov 1;505:341-351. doi: 10.1016/j.jcis.2017.05.074. Epub 2017 May 25.
Innovation and effective wastewater treatment technology is still in great demand given the emerging contaminants frequently spotted from the aqueous environment. By blending with poly (vinylidene fluoride) (PVDF), the strong hydrophilic graphene oxide (GO) and antibacterial copper oxide (CuO) were used as nanofillers to develop the novel, highly antifouling composite membranes via phase inversion process in our latest work. The existence and dispersion of GO and CuO posed a significant role on morphologies, structures, surface composition and hydrophilicity of the developed composite membranes, confirmed by SEM, TEM, FTIR and XPS in depth characterization. The SEM images showed that the modified membranes presented a lower resistant structure with developed finger-like macrovoids and thin-walled even interconnected sponge-like pores after adding nanofillers, much encouraging membrane permeation. The XPS results revealed that CuO contained CuO and CuO in the developed membrane and the CuO nanoparticles were dominant accounting for about 79.3%; thus the modified membrane specifically exhibited an efficient antibacterial capacity. Due to the hydrophilic and bactericidal membrane surface, the composite membranes demonstrated an excellent antifouling performance, including higher flux recovery rate, more resistant against accumulated contaminants and lower filtration resistance, especially lower irreversible resistance. The antifouling property, especially anti-irreversible fouling, was significantly improved, showing a significant engineering potential.
鉴于新兴污染物经常从水环 境中被发现,创新和有效的废水处理技术仍然有很大的需求。在我们的最新工作中,通过与聚偏二氟乙烯 (PVDF) 共混,将强亲水氧化石墨烯 (GO) 和抗菌氧化铜 (CuO) 用作纳米填料,通过相转化法开发了新型高抗污染复合膜。SEM、TEM、FTIR 和 XPS 的深入表征证实,GO 和 CuO 的存在和分散对所开发的复合膜的形态、结构、表面组成和亲水性起着重要作用。SEM 图像显示,改性膜在加入纳米填料后呈现出较低的阻力结构,具有发达的指状大孔和薄壁甚至相互连通的海绵状孔,这对膜渗透有很大的促进作用。XPS 结果表明,开发膜中含有 CuO 和 CuO 的 CuO,其中 CuO 纳米颗粒占主导地位,约为 79.3%;因此,改性膜具有高效的抗菌能力。由于亲水和杀菌的膜表面,复合膜表现出优异的抗污染性能,包括更高的通量恢复率、更能抵抗累积污染物和更低的过滤阻力,特别是更低的不可逆阻力。抗污染性能,特别是抗不可逆污染,得到了显著改善,显示出显著的工程潜力。