水溶液
钋
阳离子聚合
材料科学
溶剂化
化学工程
色散(光学)
环境修复
表面电荷
共价键
离子
无机化学
有机化学
化学
高分子化学
污染
物理化学
生态学
物理
光学
工程类
生物
作者
Yue Wang,Jian‐Hui Lan,Xiaofan Yang,Shouchao Zhong,Li‐Yong Yuan,Jiuqiang Li,Jing Peng,Zhifang Chai,John K. Gibson,Maolin Zhai,Wei‐Qun Shi
标识
DOI:10.1002/adfm.202205222
摘要
Abstract Charge dispersed and less hydrophilic anionic pollutants are often difficult to be preferentially captured by common cationic framework materials. A gamma radiation modification approach is employed to anchor a superhydrophobic phosphonium‐containing coating on a robust crystalline 3D covalent organic framework (COF). By regulating the surface hydrophobicity, the prepared 3DCOF‐ g ‐VBPPh 3 Cl is endowed with a strong affinity for charge dispersed and less hydrophilic oxoanions, such as MnO 4 − , TcO 4 − and ReO 4 − , to surmount the Hofmeister bias, which much favors remediation of oxoanionic pollutants in complex aqueous systems. Batch and column experiments with 3DCOF‐g‐VBPPh 3 Cl in both tap water and simulated groundwater are performed, and rapid sequestration is achieved with removal efficacy up to 99.995%, record‐high distribution coefficient of 1.0 × 10 8 mL g −1 , and desirable priority over competing anions such as Cl − , SO 4 2− , HCO 3 − , and NO 3 − , confirming promise for remediation of charge dispersed anionic pollutants. Theoretical calculations reveal a mechanism of preferential capture based on electrostatic and dispersion interaction between charge dispersed anions and 3DCOF‐g‐VBPPh 3 Cl that effectively competes with solvation of the aqueous anions.
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