吸附
共价键
化学
动力学
共价有机骨架
氢键
化学工程
离子交换
无机化学
结晶度
离子
有机化学
分子
结晶学
工程类
物理
量子力学
作者
Yunhui Zhang,Jing-Lin Liu,Tao Wang,Kean Zhu,Yifan Gu,Zi-Hao Wang,Meng Zhang,Zijian Xu,Zhenhua Chen,Haitao Li,Wei Jin
出处
期刊:Advanced Science
[Wiley]
日期:2025-04-01
卷期号:12 (25): e2501173-e2501173
被引量:2
标识
DOI:10.1002/advs.202501173
摘要
Adsorption-based separation of cationic pollutants, typically ammonia nitrogen (NH4 +-N), from water holds great potential for environmental decontamination and resource recycling. However, NH4 + is more challenging to adsorb than other cations due to its stable structure and relatively large ionic radius. In this study, a "multivariate" synthetic strategy is applied to construct covalent channels through rational encoding sulfonic acid groups to enhance NH4 + adsorption and to investigate the structure-property-function relationships of sulfonated covalent organic frameworks (COFs). The optimal sulfonic acid group density is 50%, with an adsorption capacity of 17.09 mg g-1 and an equilibrium time of 5 min, far surpassing most adsorbents. The crystallinity of COFs significantly enhances both adsorption capacity and kinetics. Surface area and hydrophilicity primarily increaseadsorption capacity, with minimal influence on kinetics. In contrast, a large pore size correlates negatively with adsorption capacity but facilitates kinetics. N K-edge near-edge X-ray absorption fine structure spectroscopy validates atomic-level adsorption mechanisms of ion exchange between NH4 + and Na+ at the -SO3Na site and the formation of hydrogen bonds (N─H─N and N─H─O) between H of NH4 + and pyrrolic N as well as O of carbonyl on COFs. This study provides directions for designing ultrafast and high-capacity adsorbents for cation capture.
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