School of Environmental and Safety Engineering, Changzhou University, Changzhou 213164, PR China.
College of Chemistry and Environmental Engineering, Jiangsu University of Technology, Changzhou 213001, PR China.
Sci Total Environ. 2021 Jan 10;751:141660. doi: 10.1016/j.scitotenv.2020.141660. Epub 2020 Aug 11.
A new NiAlFe layered double hydroxide/polydopamine/polyvinylidene fluoride (NiAlFe LDH/PDA/PVDF) membrane was fabricated by in-situ growth of LDH on the PDA modified PVDF membrane. The as-prepared membrane possesses a nano/microscale rough structural surface and displays the superior wettability of superhydrophilicity in air and underwater superoleophobicity. Combining the favourable features of superwettability and hierarchical rough structure, the NiAlFe LDH/PDA/PVDF membrane could effectively separate a series of oil-in-water emulsions with high efficiency (>99%) and high permeation flux (925-1913 L m h bar). Besides, owing to the light harvest ability of NiAlFe LDH, the relevant membrane also can be applied as a photocatalysis paper for the light-driven treatment of antibiotic residue in aqueous solution. In which, NiAlFe LDH/PDA/PVDF membrane can effectively degrade typical antibiotic tetracycline within 20 min under UV light irradiation, exhibiting excellent photocatalytic activity. In addition, cyclic experiments demonstrate that NiAlFe LDH/PDA/PVDF membrane has excellent stability and reusability both in oil-in-water emulsion separation and photocatalytic reaction. In general, the findings of this research demonstrate that photo-response LDH modified membranes have potential multiple applications in wastewater treatment.
一种新型 NiAlFe 层状双氢氧化物/聚多巴胺/聚偏二氟乙烯(NiAlFe LDH/PDA/PVDF)膜是通过在 PDA 改性的 PVDF 膜上原位生长 LDH 制备的。所制备的膜具有纳米/微米级粗糙结构表面,并表现出超亲水性在空气中和水下超疏油性的优越润湿性。结合超润湿性和分层粗糙结构的有利特点,NiAlFe LDH/PDA/PVDF 膜可以有效地分离一系列具有高效率(>99%)和高通量(925-1913 L m h bar)的水包油乳液。此外,由于 NiAlFe LDH 的光收集能力,相关膜也可用作光催化纸,用于光驱动处理水溶液中的抗生素残留。其中,NiAlFe LDH/PDA/PVDF 膜在紫外光照射下可有效降解典型抗生素四环素,在 20 分钟内降解率达 99%以上,表现出优异的光催化活性。此外,循环实验表明,NiAlFe LDH/PDA/PVDF 膜在油水乳液分离和光催化反应中均具有优异的稳定性和可重复使用性。总的来说,这项研究的结果表明,光响应 LDH 修饰膜在废水处理中有潜在的多种应用。