电容去离子
材料科学
海水淡化
阳极
电极
化学工程
吸附
氯
阴极
氯化物
阳离子聚合
电容感应
膜
电容
纳米技术
盐(化学)
无机化学
水处理
共价键
离子
饮用水净化
水溶液
离子键合
限制
金属有机骨架
作者
Junjie Zhang,Zhenhui Chen,Haitao Zhang,Yanpeng Cui,Feiyu Zheng,Yiting Duan,Leyang Guo,Daochuan Jiang,Jingsong Feng,Yue Lin,Yang Yu,Daolun Feng,Pengyi Tang,Zhifu Liang
标识
DOI:10.1002/adfm.202530236
摘要
ABSTRACT Advanced desalination technologies are crucial for addressing the growing global freshwater shortage crisis. Capacitive deionization (CDI) is a relatively new energy‐efficient desalination technology that has emerged in recent years. Advanced electrode materials are crucial for CDI. While research predominantly targets cathode materials for Na + capture, the equally critical challenge of chloride ion Cl − removal remains relatively underexplored, and electrode materials specifically designed for efficient chloride ion removal in CDI have received relatively little attention, limiting the progress of CDI‐based desalination technology. Here, we developed a viologen‐based cationic covalent organic frameworks (COFs)‐based active anode material exhibiting unique pseudocapacitive behavior and excellent chemical stability. Experiments demonstrate that an asymmetric electrode based on the TAPT‐BDB‐COF(Cl − )//MnO 2 (Na + ) system exhibits a low specific energy consumption of 80.70 kJ mol − 1 NaCl and maintains high capacitance retention after 500 cycles. A membrane capacitive deionization (MCDI) system assembled based on this material achieves a specific adsorption capacity of 87.2 mg g − 1 at 1.5 V and a low salt concentration of 500 mg L − 1 , increasing to 124.57 mg g − 1 at a high salt concentration of 3000 mg L − 1 . Performance remains stable after 20 desalination/regeneration cycles. This material serves as a valuable reference for the development of efficient electrode materials for capacitive deionization and chlorine removal technologies.
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