化学
电容去离子
吸附
微型多孔材料
海水淡化
共价键
选择性
共价有机骨架
金属有机骨架
化学工程
配体(生物化学)
纳米技术
选择性吸附
多孔性
离子
纳米孔
无机化学
电容感应
水溶液
静电学
盐(化学)
混合材料
多孔介质
唐南势
纳米孔
电离
电化学
电极
作者
Ruibo Xu,Xingtao Xu,Azhar Alowasheeir,Yusuke Yamauchi,Dong Jiang
标识
DOI:10.1093/bulcsj/uoaf053
摘要
Abstract Covalent organic frameworks (COFs) are emerging as promising candidates for high-performance capacitive deionization (CDI) for their ordered pore architectures, tunable functionalization, and abundant active sites. Here, we demonstrate a carboxyl-functionalized COF (TpPa-COOH-COF) for enhanced CDI performance. Comprehensive structural characterizations reveal that the microporous channels of TpPa-COOH-COF, decorated with carboxyl groups exhibit superior electrochemical performance and high salt adsorption capacity (SAC) compared to its non-functionalized counterpart (TpPa-COF). The integration of carboxyl groups within the material enhances the efficient adsorption of Na+, leveraging a combination of electrostatic forces and ligand coordination. In a hybrid CDI (HCDI) system, TpPa-COOH-COF electrode demonstrates remarkable desalination performance, achieving a SAC of 70.49 mg g−1 in a 2,000 mg L−1 NaCl solution under 1.6 V. Furthermore, the pH-dependent ionization behavior of carboxyl within the channel endows the electrode with tunable ion selectivity. Selective Na+ adsorption dominates under weakly acidic to neutral conditions (pH 4 and 7), while K+ selectivity increases under mildly alkaline condition (pH 9). The successful integration of carboxyl with ordered porous architectures provides a strategic pathway for developing next-generation desalination systems with improved efficiency and tunable ion selectivity.
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