海水淡化
膜
离子交换
化学
化学工程
氧化物
限制电流
化学稳定性
材料科学
离子
有机化学
电化学
电极
生物化学
工程类
物理化学
作者
Md Mofasserul Alam,Masem Hossain,Ying Mei,Chenxiao Jiang,Yaoming Wang,Chuyang Y. Tang,Tongwen Xu
出处
期刊:Desalination
[Elsevier BV]
日期:2020-10-12
卷期号:497: 114779-114779
被引量:26
标识
DOI:10.1016/j.desal.2020.114779
摘要
Anion exchange membrane (AEM) as a positively-charged polymer allows the transition of anions, block the cations, and has been widely used in the electro-desalination processes. Permselectivity, alkaline stability, and electric ohmic resistance on the AEM are critical issues determining the final desalination efficiency in an electro-desalination process. Here in this work, the AEM with sound desalination and alkaline stable character was fabricated from the aspect of functional group optimization, i.e., introduce into the 2, 6-dimethyl-1, 4-phenylene oxide (PPO) polymer matrix as the alternative of the conventional. The 1-naphthol derivatives, i.e., 2-[dimethylaminomethyl] naphthalen-1-ol, and 2,7-bis[dimethylaminomethyl] naphthalen-1-ol as the functional groups provide conjugated π-electron, which may increase the alkaline stability of the anion exchange membranes (AEMs), and thus guarantee its long-term stability when operating the electro-desalination process over the limiting current density condition. The innovative membranes perform lower area resistance 0.5–2.27 Ω cm 2 and well stability in the alkaline circumstance. In comparison to the commercial membranes (Neosepta AMX, standard grade), the obtained membrane presented comparable electro-desalination performance. The results indicate AEMs that functionalized by 1-naphthol derivatives can be a promising candidate for electro-desalination processes. • Alkaline stable AEM was fabricated for electro-desalination by functional optimization. • The membrane functionalization (1-naphthol derivate with conjugated π-electron) was under gentle circumstance. • 2, 6-Dimethyl-1, 4-phenylene oxide polymer matrix was used to prevent alkali-attack on polymer backbone. • The fabricated membrane performed well desalination efficiency under electric-driven force.
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