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两性离子共价有机框架:用于气体分离和无水质子传导的有吸引力的多孔主体

Zwitterionic Covalent Organic Frameworks: Attractive Porous Host for Gas Separation and Anhydrous Proton Conduction.

作者信息

Fu Yu, Wu Yue, Chen Shuhui, Zhang Wenxiang, Zhang Ying, Yan Tong, Yang Bolun, Ma Heping

机构信息

School of Chemical Engineering and Technology, Xi'an Jiaotong University, Xi'an 710049, People's Republic of China.

出版信息

ACS Nano. 2021 Dec 28;15(12):19743-19755. doi: 10.1021/acsnano.1c07178. Epub 2021 Nov 30.

Abstract

Ionic covalent organic frameworks (COFs) consisting of an anionic or cationic skeleton and corresponding counterions have demonstrated great potential in many application fields such as ion conduction, molecular separation, and catalysis. However, arranging anionic and cationic groups into the same COF to form zwitterionic materials is still unexplored. Herein we design the synthesis of three zwitterionic COFs as attractive porous hosts for SO/CO separation and anhydrous proton conduction. The separated cationic and anionic groups in zwitterionic COFs' channels can act as two different polar sites for SO adsorption, allowing zwitterionic COFs to achieve a high SO adsorption capacity (216 mL/g, 298 K) and impressive SO/CO selectivity (118, 298 K). Furthermore, after loading with triazole/imidazole, the zwitterionic groups in COFs' channels can induce complete proton carrier deprotonation, producing more freely migrating protons. The free protons migrate along a continuous hydrogen-bonding network in zwitterionic COFs' channels, leading to outstanding anhydrous proton conductivity up to 4.38 × 10 S/cm, which is much higher than other N-heterocyclic-doped porous materials under anhydrous conditions. Proton dissociation energy calculations combined with frequency-dependent dielectric analysis give insight into the role of zwitterionic COFs for proton conductivity. Our work provides the possibility to design well-defined zwitterionic frameworks for gas separation and ion conduction.

摘要

由阴离子或阳离子骨架及相应抗衡离子组成的离子共价有机框架材料(COFs)在离子传导、分子分离和催化等许多应用领域已展现出巨大潜力。然而,将阴离子和阳离子基团排列在同一COF中以形成两性离子材料仍未得到探索。在此,我们设计合成了三种两性离子COFs,作为用于SO/CO分离和无水质子传导的有吸引力的多孔主体材料。两性离子COFs通道中分离的阳离子和阴离子基团可作为SO吸附的两个不同极性位点,使两性离子COFs实现高SO吸附容量(216 mL/g,298 K)和令人印象深刻的SO/CO选择性(118,298 K)。此外,在负载三唑/咪唑后,COFs通道中的两性离子基团可诱导质子载体完全去质子化,产生更多自由迁移的质子。自由质子沿着两性离子COFs通道中的连续氢键网络迁移,导致无水质子电导率高达4.38×10 S/cm,这比其他N杂环掺杂多孔材料在无水条件下的电导率高得多。质子解离能计算结合频率相关介电分析深入了解了两性离子COFs对质子传导的作用。我们的工作为设计用于气体分离和离子传导的明确两性离子框架提供了可能性。

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