Mi Yi-Fang, Liu Jia-Li, Xia Wen, He Shu-Heng, Shentu Bao-Qing
State Key Lab of Chemical Engineering, College of Chemical and Biological Engineering, Zhejiang University, 38 Zheda Road, Hangzhou 310027, China.
Key Laboratory of Advanced Textile Materials and Manufacturing Technology and Engineering Research Center for Eco-Dyeing & Finishing of Textiles, Ministry of Education, Zhejiang Sci-Tech University, Hangzhou 310018, China.
Membranes (Basel). 2023 Jul 25;13(8):693. doi: 10.3390/membranes13080693.
Polyamide (PA) nanofiltration (NF) membranes suffer from biofouling, which will deteriorate their separation performance. In this study, we proposed a strategy to incorporate silver nanoparticles (Ag NPs) into PA NF membranes in situ, in order to simultaneously enhance water permeability and antibacterial performance. The chloride-doped carbon quantum dots (Cl-CQDs) with photocatalytic performance were pre-embedded in the PA selective layer. Under visible light irradiation, the photogenerated charge carriers generated by Cl-CQDs rapidly transported to silver ions (Ag ions), resulting in the in situ formation of Ag NPs. The proposed strategy avoided the problem of aggregating Ag NPs, and the amount of Ag NPs on the membrane surfaces could be easily tuned by changing silver nitrate (AgNO) concentrations and immersion times. These uniformly dispersed Ag NPs increased membrane hydrophilicity. Thus, the obtained thin film nanocomposite Ag NPs (TFN-Ag) membrane exhibited an improved water flux (31.74 L m h), which was ~2.98 times that of the pristine PA membrane; meanwhile, the sodium sulfate (NaSO) rejection rate was 96.11%. The sterilization rates of the TFN-Ag membrane against Escherichia coli () and Staphylococcus aureus () were 99.55% and 99.52%, respectively. Thus, this facile strategy simultaneously improved the permeability and antibacterial property of PA NF membranes.
聚酰胺(PA)纳滤(NF)膜存在生物污染问题,这会使其分离性能恶化。在本研究中,我们提出了一种将银纳米颗粒(Ag NPs)原位掺入PA NF膜的策略,以同时提高水渗透性和抗菌性能。具有光催化性能的氯掺杂碳量子点(Cl-CQDs)预先嵌入PA选择层中。在可见光照射下,Cl-CQDs产生的光生电荷载流子迅速传输到银离子(Ag离子),导致Ag NPs的原位形成。所提出的策略避免了Ag NPs聚集的问题,并且通过改变硝酸银(AgNO)浓度和浸泡时间可以轻松调节膜表面上Ag NPs的量。这些均匀分散的Ag NPs增加了膜的亲水性。因此,所制备的薄膜纳米复合Ag NPs(TFN-Ag)膜表现出改善的水通量(31.74 L m h),约为原始PA膜的2.98倍;同时,硫酸钠(NaSO)截留率为96.11%。TFN-Ag膜对大肠杆菌()和金黄色葡萄球菌()的杀菌率分别为99.55%和99.52%。因此,这种简便的策略同时提高了PA NF膜的渗透性和抗菌性能。