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基于噻吩-聚(乙烯亚胺)的双功能纳滤膜的构建及其耐氯性能

Construction and Chlorine Resistance of Thiophene-Poly(ethyleneimine)-Based Dual-Functional Nanofiltration Membranes.

作者信息

Cheng Luyang, Meng Qing-Wei, Ge Qingchun

机构信息

College of Environment and Safety Engineering, Fuzhou University, No.2 Xueyuan Road, Fujian 350116, China.

出版信息

ACS Appl Mater Interfaces. 2023 Feb 22;15(7):10018-10029. doi: 10.1021/acsami.2c21627. Epub 2023 Feb 7.

DOI:10.1021/acsami.2c21627
PMID:36749691
Abstract

The demand to improve the chlorine resistance of polyamide (PA) membranes is escalated with greater amounts of chlorine-containing disinfectant being used in global water treatment during the COVID-19 pandemic. In this work, we designed thiophene-functionalized poly(ethyleneimine) (TPEI) materials first and grafted them onto a conventional PA membrane to develop novel nanofiltration membranes (PEI-M, TPEI-1-M, TPEI-2-M). These membranes have dual-functionalized selective surfaces covered by hydrophilic amino groups and electron-rich thiophene moieties, which endow these membranes with superior chlorine resistance and improved separation performance. The modified membranes increase the rejection of MgCl from 86.5% of the nascent PA membrane (PA-M) to higher than 93.0% without sacrificing the membrane water permeability. More stable separation performance is achieved with all of the as-prepared membranes than PA-M after exposure to a 2000 ppm sodium hypochlorite solution. TPEI-2-M outperforms other membranes after being treated in a chlorination intensity of 16,000 ppm·h with the smallest flux loss and the highest MgCl rejection. This is mainly ascribed to the highest amount of amino and thiophene moieties on the TPEI-2-M surface. This study provides an effective protocol for developing novel PA-based nanofiltration membranes while demonstrating its superiority over current technologies with exceptional separation performance and antichlorine ability.

摘要

在新冠疫情期间,全球水处理中使用的含氯消毒剂数量增加,提高聚酰胺(PA)膜耐氯性的需求也随之升级。在这项工作中,我们首先设计了噻吩功能化的聚(乙烯亚胺)(TPEI)材料,并将其接枝到传统PA膜上,以开发新型纳滤膜(PEI-M、TPEI-1-M、TPEI-2-M)。这些膜具有由亲水性氨基和富电子噻吩部分覆盖的双功能化选择性表面,这赋予这些膜优异的耐氯性和改进的分离性能。改性膜在不牺牲膜水渗透性的情况下,将MgCl的截留率从新生PA膜(PA-M)的86.5%提高到93.0%以上。在暴露于2000 ppm次氯酸钠溶液后,所有制备的膜都比PA-M具有更稳定的分离性能。在16000 ppm·h的氯化强度下处理后,TPEI-2-M的通量损失最小,MgCl截留率最高,优于其他膜。这主要归因于TPEI-2-M表面上氨基和噻吩部分的含量最高。本研究提供了一种开发新型PA基纳滤膜的有效方案,同时展示了其在分离性能和抗氯能力方面优于现有技术的优势。

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