Industrial oily wastewater treatment by microfiltration using silver nanoparticle-incorporated poly (acrylonitrile-styrene) membrane

IF 5.9 3区 环境科学与生态学 Q1 Environmental Science Environmental Sciences Europe Pub Date : 2023-08-13 DOI:10.1186/s12302-023-00764-x
Atef El Jery, Amimul Ahsan, Saad Sh. Sammen, Abdallah Shanableh, Dinesh Sain, Andrés Alexis Ramírez-Coronel, Md. Alhaz Uddin, Mohammed Abdul Jaleel Maktoof, Md. Shafiquzzaman, Nadhir Al-Ansari
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Abstract

Membrane filtration exhibit operational limitations such as biofouling, which leads to concentration polarization and reduces permeability and selectivity, despite advantages such as low operating cost, high selectivity, and permeability. In recent years, the antibacterial properties of silver nanoparticles (AgNPs) have been investigated for improving membrane processes; however, the fouling phenomena in presence of AgNPs in the membrane matrix have not been fully discussed. Herein, the antifouling properties of a poly (acrylonitrile-styrene) copolymer incorporated with AgNPs were studied in a microfiltration membrane process. The Creighton method was used to synthesize AgNPs, and the effects of AgNPs on the porosity, morphology, pore size, mechanical strength, permeability, and selectivity of the membranes were investigated. Moreover, to investigate the biofouling of the obtained membranes, microfiltration of industrial oily wastewater was performed at constant pressure over three cycles. Using AgNPs in the membrane matrix resulted in enhanced antifouling properties of the copolymer membrane, which is related to the structure of the AgNPs in the casting solution, as proven by SAXS analysis. The results show that the CFU% for Staphylococcus aureus and E.coli reach 2% and 6%, respectively. Finally, the Derjaguin–Landau–Verwey–Overbeek (DLVO) thermodynamic model was applied to study the antifouling mechanism, correctly predict the separation behavior in the membrane, and design, simulate, and optimize the separation processes in the membrane separation plantsa. The DLVO model could predict the separation behavior in the synthesized membranes, and the poly(acrylonitrile-styrene) copolymer membranes containing AgNPs were proven have promising industrial wastewater treatment applications.

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纳米银-聚丙烯腈-苯乙烯膜微滤处理工业含油废水
尽管膜过滤具有低运行成本、高选择性和高渗透性等优点,但仍存在操作限制,如生物污染,导致浓度极化,降低渗透性和选择性。近年来,研究银纳米颗粒(AgNPs)的抗菌性能,以改善膜工艺;然而,在膜基质中存在AgNPs时的污染现象尚未得到充分的讨论。本文采用微滤膜法研究了AgNPs对聚丙烯腈-苯乙烯共聚物的防污性能。采用Creighton法合成AgNPs,考察了AgNPs对膜的孔隙度、形貌、孔径、机械强度、渗透性和选择性的影响。此外,为了研究所获得的膜的生物污染,在恒压下对工业含油废水进行了三个循环的微过滤。在膜基质中使用AgNPs可以增强共聚物膜的防污性能,这与铸造溶液中AgNPs的结构有关,SAXS分析证实了这一点。结果表明,对金黄色葡萄球菌和大肠杆菌的CFU%分别达到2%和6%。最后,应用Derjaguin-Landau-Verwey-Overbeek (DLVO)热力学模型研究了膜的防污机理,正确预测了膜内的分离行为,并对膜分离装置中的分离过程进行了设计、模拟和优化。DLVO模型可以预测AgNPs在合成膜中的分离行为,证明了含AgNPs的聚(丙烯腈-苯乙烯)共聚物膜具有良好的工业废水处理应用前景。
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来源期刊
Environmental Sciences Europe
Environmental Sciences Europe Environmental Science-Pollution
CiteScore
9.20
自引率
1.70%
发文量
110
审稿时长
13 weeks
期刊介绍: ESEU is an international journal, focusing primarily on Europe, with a broad scope covering all aspects of environmental sciences, including the main topic regulation. ESEU will discuss the entanglement between environmental sciences and regulation because, in recent years, there have been misunderstandings and even disagreement between stakeholders in these two areas. ESEU will help to improve the comprehension of issues between environmental sciences and regulation. ESEU will be an outlet from the German-speaking (DACH) countries to Europe and an inlet from Europe to the DACH countries regarding environmental sciences and regulation. Moreover, ESEU will facilitate the exchange of ideas and interaction between Europe and the DACH countries regarding environmental regulatory issues. Although Europe is at the center of ESEU, the journal will not exclude the rest of the world, because regulatory issues pertaining to environmental sciences can be fully seen only from a global perspective.
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