Synergistic Linker and Linkage of Covalent Organic Frameworks for Enhancing Gold Capture

连接器 氢铵 共价键 共价有机骨架 质子化 吡嗪 纳米技术 材料科学 路易斯酸 离子 化学 催化作用 有机化学 计算机科学 吸附 操作系统
作者
Xiubei Yang,Di Jiang,Yubin Fu,Xuewen Li,Guojuan Liu,Xuesong Ding,Bao‐Hang Han,Qing Xu,Gaofeng Zeng
出处
期刊:Small [Wiley]
卷期号:20 (44) 被引量:2
标识
DOI:10.1002/smll.202404192
摘要

Abstract The tunable pore walls and skeletons render covalent organic frameworks (COFs) as promising absorbents for gold (Au) ion. However, most of these COFs suffered from low surface areas hindering binding sites exposed and weak binding interaction resulting in sluggish kinetic performance. In this study, COFs have been constructed with synergistic linker and linkage for high‐efficiency Au capture. The designed COFs (PYTA‐PZDH‐COF and PYTA‐BPDH‐COF) with pyrazine or bipyridine as linkers showed high surface areas of 1692 and 2076 m 2 g ‒1 , providing high exposed surface areas for Au capture. In addition, the Lewis basic nitrogen atoms from the linkers and linkages are easily hydronium, which enabled to fast trap Au via coulomb force. The PYTA‐PZDH‐COF and PYTA‐BPDH‐COF showed maximum Au capture capacities of 2314 and 1810 mg g −1 , higher than other reported COFs. More importantly, PYTA‐PZDH‐COF are capable of rapid adsorption kinetics with achieving 95% of maximum binding capacity in 10 min. The theoretical calculation revealed that the nitrogen atoms in linkers and linkages from both COFs are simultaneously hydronium, and then the protonated PYTA‐PZDH‐COF are more easily binding the AuCl 4 ‒ , further accelerating the binding process. This study gives the a new insight to design COFs for ion capture.
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