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原位复合两性离子金属有机框架提高咖啡环结构聚酰胺膜的水透过性和抗污染性能。

Enhanced Water Permeability and Antifouling Property of Coffee-Ring-Textured Polyamide Membranes by In Situ Incorporation of a Zwitterionic Metal-Organic Framework.

机构信息

State Key Laboratory of Urban Water Resource and Environment, Harbin Institute of Technology, Harbin 150090, China.

出版信息

Environ Sci Technol. 2021 Apr 20;55(8):5324-5334. doi: 10.1021/acs.est.0c07122. Epub 2021 Mar 17.

DOI:10.1021/acs.est.0c07122
PMID:33728905
Abstract

Modulation of the polyamide structure is critically important for the reverse-osmosis performance of thin-film composite (TFC) membranes in the field of water reuse and desalination. Herein, zwitterionic nanoparticles of zeolitic imidazolate framework-8 (PZ@ZIF-8) were fabricated and incorporated into the polyamide active layer through the interfacial polymerization method. A hydrophilic, zwitterionic coffee-ring structure was formed on the surface of polyamide thin-film nanocomposite (TFN) membranes due to the adjusted diffusion rate of -phenylenediamine (MPD) from the aqueous phase into the organic phase during the interfacial polymerization process. Surface characterization demonstrated that the coffee-ring structure increased the amounts of water transport channels on the membrane surface and the intrinsic pores of PZ@ZIF-8 maintained the salt rejection. Antifouling and bactericidal activities of TFN membranes were enhanced remarkably owing to the bacterial-"defending" and bacterial-"attacking" behaviors of hydrophilic and zwitterionic groups from PZ@ZIF-8 nanoparticles. This work would provide a promising method for the application of MOFs to enhance the bio-/organic-fouling resistance of TFN membranes with high water permeation and salt rejection.

摘要

聚酰胺结构的调节对于在水再利用和海水淡化领域的薄膜复合(TFC)膜的反渗透性能至关重要。在此,通过界面聚合方法制备了两性离子纳米沸石咪唑酯骨架-8(PZ@ZIF-8)颗粒,并将其掺入聚酰胺活性层中。由于在界面聚合过程中 -苯二胺(MPD)从水相向有机相的扩散速率得到调节,因此在聚酰胺薄膜纳米复合(TFN)膜的表面形成了亲水性两性离子咖啡环结构。表面特性表明,咖啡环结构增加了膜表面的水传输通道数量和 PZ@ZIF-8 的固有孔,保持了盐的截留率。由于 PZ@ZIF-8 纳米颗粒的亲水和两性离子基团的细菌“防御”和细菌“攻击”行为,TFN 膜的抗污染和杀菌活性得到显著增强。这项工作为应用 MOFs 提供了一种有前途的方法,以提高具有高水渗透性和盐截留率的 TFN 膜的生物/有机污染阻力。

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