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首页> 外文期刊>Journal of water reuse and desalination >Controlling biofouling of reverse osmosis membranes through surface modification via grafting patterned polymer brushes
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Controlling biofouling of reverse osmosis membranes through surface modification via grafting patterned polymer brushes

机译:通过通过接枝图案化聚合物刷来控制反渗透膜的生物污垢

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Thin film composite (TFC) polyamide membranes are extensively used as selective barriers in reverse osmosis processes. The major challenge faced with TFC membranes is significant fouling on the surface, which restricts the overall purification performance. To address the fouling problem, we developed novel fouling-resistant surface coatings via polyelectrolyte [poly(allylamine hydrochloride)/poly(styrene sulfonate)] layer-by-layer self-assembly, functionalized with patterned antimicrobial and antifouling/fouling-release polymer brushes. Two types of different polymer brushes, among antimicrobial poly(quaternary ammonium), antifouling poly(sulfobetaine) and fouling-release poly(dimethylsiloxane) (PDMS), were selected and grafted in a checkerboard pattern, with a square feature of 2 mu m. The successful patterning and incorporation of different polymer brushes on the membrane was confirmed through X-ray photoelectron spectroscopy analysis. Grafting with sulfobetaine and PDMS significantly increased the hydrophilicity and lowered the surface energy of the membrane, respectively. The fouling-resistant property of the modified membrane was evaluated via static protein (bovine serum albumin) deposition and bacterial (Escherichia coli) cell adhesion tests. Surface modifications proved to diminish protein adhesion and exhibited 70-93% reduction in bacterial cell attachment. This observation suggests that the modified membranes have strong antifouling properties that inhibit the irreversible adhesion of organic and bio-foulants on the membrane surface.
机译:薄膜复合物(TFC)聚酰胺膜被广泛地用作反渗透过程中的选择性屏障。 TFC膜面临的主要挑战在表面上是显着的污垢,这限制了整体净化性能。为了解决污垢问题,我们通过聚电解质[聚(盐酸氨基丙基丙基丙烯酸盐)/聚(苯乙烯磺酸盐)]层逐层自组装开发了新型污垢抗性表面涂层,用图案化抗微生物和防污/污垢释放聚合物刷官能化。选择两种类型的不同聚合物刷,在抗微生物聚(季铵),防污聚(磺基因)和污垢释放聚(二甲基硅氧烷)(PDMS)中,以棋盘图案接枝,具有2μm的方形特征。通过X射线光电子能谱分析确认膜上的成功图案化和掺入膜上的掺入。用磺基因和PDMS接枝显着增加了亲水性并降低了膜的表面能。通过静态蛋白(牛血清白蛋白)沉积和细菌(大肠杆菌)细胞粘附试验评估改性膜的抗污染性能。证明了蛋白质粘附的表面改性,并在细菌细胞附着中表现出70-93%。该观察结果表明改性膜具有强的防污性能,可抑制有机和生物污垢在膜表面上的不可逆粘附。

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