纳滤
膜
生物污染
反渗透
聚酰胺
氯
化学
过氧乙酸
结垢
膜技术
水处理
海水淡化
过氧化氢
过滤(数学)
制浆造纸工业
化学工程
杀生物剂
膜污染
单体
降级(电信)
薄膜复合膜
海水
合成膜
盐(化学)
界面聚合
清洁剂
废物管理
作者
Nanxi Jiang,Hao Wang,Chengzhi Hu,Zhenyu Li,Jean-Philippe Croue,Gary Amy,Chao Liu
标识
DOI:10.1021/acsestengg.5c01068
摘要
Aromatic polyamide (PA) thin-film composite membranes are widely employed in reverse osmosis and nanofiltration for seawater desalination and water reuse. However, they can be degraded by chlorine used in water disinfection for biofouling control, hampering operational efficiency and the membrane service life. Tremendous efforts have been made to mitigate the adverse impacts of water disinfection on PA membranes while maintaining biofouling control and filtration performance. This paper reviews the reaction mechanisms of PA membranes with various disinfectants (e.g., chlorine, bromine, chlorine dioxide, monochloramine, peracetic acid, and hydrogen peroxide). Mechanisms for their reactions with the PA membrane model monomer (e.g., benzanilide) include aromatic substitution, N-substitution, and amide bond breakage. In general, disinfectants with a high reduction potential would cause severe membrane damage. An increase in the surface halogen content upon chlorine disinfection can decrease PA membrane hydrophilicity. Yet, degradation of the membrane via an oxidation pathway typically increases its hydrophilicity. Mild oxidation enhances membrane salt rejection because of increasing surface negative charge and tightening effects, while severe oxidation leads to a decline in membrane performance. While summarizing the state of knowledge on the PA membrane performance after water disinfection, this review also identifies several knowledge gaps to highlight future research topics of interest.
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