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通过增加交联度来提高聚酰胺反渗透膜的耐氯性能。

Chlorine resistance property improvement of polyamide reverse osmosis membranes through cross-linking degree increment.

机构信息

Department of Applied Chemistry, Faculty of Science, University of Sistan and Baluchestan, P.O. Box 98135-674, Zahedan, Iran; University of Barcelona, Faculty of Chemistry, Department of Chemical Engineering and Analytical Chemistry, Martí i Franquès Street 1, 6th Floor, 08028 Barcelona, Spain; OdirLab Co, Loreto, 44, 08029 Barcelona, Spain.

Department of Applied Chemistry, Faculty of Science, University of Sistan and Baluchestan, P.O. Box 98135-674, Zahedan, Iran.

出版信息

Sci Total Environ. 2023 Sep 1;889:164283. doi: 10.1016/j.scitotenv.2023.164283. Epub 2023 May 18.

Abstract

Highly permeable polyamide reverse osmosis (RO) membranes are desirable for reducing the energy burden and ensuring future water resources in arid and semiarid regions. One notable drawback of thin film composite (TFC) polyamide RO/NF membranes is the polyamide's sensitivity to degradation by free chlorine, the most used biocide in water purification trains. This investigation demonstrated a significant increase in the crosslinking-degree parameter by the m-phenylenediamine (MPD) chemical structure extending in the thin film nanocomposite (TFN) membrane without adding extra MPD monomers to enhance the chlorine resistance and performance. Membrane modification was carried out according to monomer ratio changes and Nanoparticle embedding into the PA layer approaches. A new class of TFN-RO membranes incorporating novel aromatic amine functionalized (AAF)-MWCNTs embedded into the polyamide (PA) layer was introduced. A purposeful strategy was carried out to use cyanuric chloride (2,4,6-trichloro-1,3,5-triazine) as an intermediate functional group in the AAF-MWCNTs. Thus, amidic nitrogen, connected to benzene rings and carbonyl groups, assembles a structure similar to the standard PA, consisting of MPD and trimesoyl chloride. The resulting AAF-MWCNTs were mixed in the aqueous phase during the interfacial polymerization to increase the susceptible positions to chlorine attack and improve the crosslinking degree in the PA network. The characterization and performance results of the membrane demonstrated an increase in ion selectivity and water flux, impressive stability of salt rejection after chlorine exposure, and improved antifouling performance. This purposeful modification resulted in overthrowing two tradeoffs; i) high crosslink density-water flux and ii) salt rejection-permeability. The modified membrane demonstrated ameliorative chlorine resistance relative to the pristine one, with twice the increase in crosslinking degree, more than four times the enhancement of the oxidation resistance, negligible reduction in the salt rejection (0.83 %), and only 5 L/m2.h flux loss following a rigorous static chlorine exposure of 500 ppm.h under acidic conditions. The excellent performance of new chlorine resistant TNF RO membranes fabricated via AAF-MWCNTs together with the facile membrane manufacturing process offered the possibility of postulating them in the desalination field, which could eventually help the current freshwater supply challenge.

摘要

高度渗透的聚酰胺反渗透(RO)膜对于减少能源负担并确保干旱和半干旱地区的未来水资源是可取的。薄膜复合(TFC)聚酰胺 RO/NF 膜的一个显著缺点是聚酰胺对游离氯降解的敏感性,游离氯是水净化过程中最常用的杀生剂。这项研究通过在薄膜纳米复合(TFN)膜中扩展间苯二胺(MPD)化学结构,显著增加了交联度参数,而无需添加额外的 MPD 单体来提高耐氯性和性能。通过改变单体比例和纳米粒子嵌入聚酰胺(PA)层的方法来进行膜改性。引入了一类新型的 TFN-RO 膜,将新型芳族胺功能化(AAF)-MWCNT 嵌入聚酰胺(PA)层中。进行了一项有针对性的策略,使用三聚氯氰(2,4,6-三氯-1,3,5-三嗪)作为 AAF-MWCNT 中的中间官能团。因此,与苯环和羰基相连的酰胺氮,组装成与标准 PA 相似的结构,由 MPD 和均苯三甲酰氯组成。所得的 AAF-MWCNT 在界面聚合过程中混入水相,以增加对氯攻击的敏感位置并提高 PA 网络的交联度。膜的表征和性能结果表明,离子选择性和水通量增加,氯暴露后盐截留率的稳定性令人印象深刻,抗污染性能得到改善。这种有针对性的修饰克服了两个权衡方案; i)高交联密度-水通量和 ii)盐截留-渗透性。与原始膜相比,改性膜的耐氯性得到改善,交联度提高了两倍,氧化稳定性提高了四倍以上,盐截留率几乎没有降低(0.83%),在酸性条件下经过 500 ppm.h 的严格静态氯暴露后,通量仅损失 5 L/m2.h。通过 AAF-MWCNT 制造的新型耐氯 TNF RO 膜的优异性能以及易于制造的膜制造工艺为其在海水淡化领域的应用提供了可能性,这最终可能有助于解决当前的淡水供应挑战。

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