Wang Hongfei, Jiao Wen-Na, Zhu Wei-De, Huang Si, Lin Xiao-Chun, Chen Ting, Fan Yanan, Chen Fangzheng, Xu Hai-Sen, Pan Mei, Su Cheng-Yong
GBRCE for Functional Molecular Engineering, LIFM, IGCME, School of Chemistry, Sun Yat-Sen University, Guangzhou, 510275, China.
Department of Chemistry, National University of Singapore, Singapore, 117543, Singapore.
Angew Chem Int Ed Engl. 2025 Aug 25;64(35):e202511559. doi: 10.1002/anie.202511559. Epub 2025 Jun 30.
Emerging as a type of promising material for proton conduction, covalent organic frameworks (COFs) assembled from dynamic imine bonds face a challenge of surmounting hydrolytic instability to achieve long-term performance in humid environments. In this work, we report a post-synthetic strategy to simultaneously enhance the hydrolytic stability and hydrophilicity of a pyridine-imine-based COF, COF-LIFM7, without compromising its crystallinity and porosity. A bifunctional monomer containing amino and acetal groups was employed to construct the primary framework, which was subsequently modified via amide formation and pyridine N-oxidation to yield COF-LIFM7-Amide and COF-LIFM7-Amide-NO. These stepwise modifications increased the polarity and hydrogen-binding sites within COF pores to improve water affinity, leading to a three-order-of-magnitude enhancement in the proton conductivity for COF-LIFM7-Amide-NO, reaching 1.9 × 10 S cm at 95% relative humidity and 70 °C. This study highlights a generalizable post-synthetic approach for tuning the pore chemistry of COFs to achieve high performance in proton-conducting applications under humid conditions.
作为一种有前景的质子传导材料,由动态亚胺键组装而成的共价有机框架(COFs)面临着克服水解不稳定性以在潮湿环境中实现长期性能的挑战。在这项工作中,我们报告了一种后合成策略,可同时提高基于吡啶-亚胺的COF(COF-LIFM7)的水解稳定性和亲水性,而不影响其结晶度和孔隙率。使用含有氨基和缩醛基团的双功能单体构建初级框架,随后通过酰胺形成和吡啶N-氧化进行修饰,得到COF-LIFM7-酰胺和COF-LIFM7-酰胺-NO。这些逐步修饰增加了COF孔内的极性和氢键位点,以提高水亲和力,导致COF-LIFM7-酰胺-NO的质子传导率提高了三个数量级,在95%相对湿度和70°C下达到1.9×10 S cm。这项研究突出了一种通用的后合成方法,用于调节COFs的孔化学性质,以在潮湿条件下的质子传导应用中实现高性能。