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MWCNTs/UiO-66-NH 杂化纳米粒子增强耐微塑料污染的弹性正向渗透膜。

Resilient forward osmosis membranes against microplastics fouling enhanced by MWCNTs/UiO-66-NH hybrid nanoparticles.

机构信息

School of Engineering, Edith Cowan University, 270 Joondalup Drive, Joondalup, Perth, WA, 6027, Australia.

Fluid Science & Resources Division, Department of Chemical Engineering, The University of Western Australia, Crawley, WA, 6009, Australia.

出版信息

Chemosphere. 2024 Jul;359:142180. doi: 10.1016/j.chemosphere.2024.142180. Epub 2024 Apr 26.

Abstract

The escalating presence of microplastics (MPs) in wastewater necessitates the investigation of effective tertiary treatment process. Forward osmosis (FO) emerges as an effective non-pressurized membrane process, however, for the effective implementation of FO systems, the development of fouling-resistance FO membranes with high-performance is essential. This study focuses on the integration of MWCNT/UiO-66-NH as metal-organic frameworks (MOFs) and multi-wall carbon nanotubes (MWCNT) nanocomposites in thin film composite (TFC) FO membranes, harnessing the synergistic power of hybrid nanoparticles in FO membranes. The results showed that the addition of MWCNT/UiO-66-NH in the aqueous phase during polyamide formation changed the polyamide surface structure, and enhanced membranes' hydrophilicity by 44%. The water flux of the modified FO membrane incorporated with 0.1 wt% MWCNTs/UiO-66-NH increased by 67% and the reverse salt flux decreased by 22% as in comparison with the control membrane. Moreover, the modified membrane showed improved antifouling behavior against both organic foulant and MPs. The MWCNT/UiO-66-NH membrane experienced 35% flux decline while the control membrane experienced 65% flux decline. This proves that the integration of MWCNT/UiO-66-NH nanoparticles into TFC FO membranes is a viable approach in creating advanced FO membranes with high antifouling propensity with potential to be expanded further to other membrane applications.

摘要

废水中微塑料(MPs)的不断增加需要研究有效的三级处理工艺。正向渗透(FO)作为一种有效的非加压膜处理方法,然而,为了有效实施 FO 系统,开发具有高性能的抗污染 FO 膜至关重要。本研究侧重于将 MWCNT/UiO-66-NH 作为金属有机骨架(MOFs)和多壁碳纳米管(MWCNT)纳米复合材料集成到薄膜复合(TFC)FO 膜中,利用混合纳米粒子在 FO 膜中的协同作用。结果表明,在聚酰胺形成过程中,在水相中添加 MWCNT/UiO-66-NH 改变了聚酰胺表面结构,使膜的亲水性提高了 44%。与对照膜相比,加入 0.1wt%MWCNTs/UiO-66-NH 的改性 FO 膜的水通量增加了 67%,反向盐通量减少了 22%。此外,改性膜表现出对有机污染物和 MPs 的更好的抗污染性能。MWCNT/UiO-66-NH 膜的通量下降了 35%,而对照膜的通量下降了 65%。这证明了将 MWCNT/UiO-66-NH 纳米粒子集成到 TFC FO 膜中是一种可行的方法,可以制造具有高抗污染倾向的先进 FO 膜,并有可能进一步扩展到其他膜应用。

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