Liu Lei, Cui Di, Zhang Shuran, Xie Wei, Yao Chan, Xu Yanhong
Key Laboratory of Preparation and Applications of Environmental Friendly Materials (Jilin Normal University), Ministry of Education, Changchun 130103, Jilin, PR China.
Dalton Trans. 2023 Feb 28;52(9):2762-2769. doi: 10.1039/d2dt03910a.
As a rising class of crystallographic organic polymers, covalent-organic frameworks (COFs) have high specific surface areas, ordered pore structures, and designability, which exhibit broad application prospects in the energy storage sector. However, their low electrical conductivity hinders their potential use in supercapacitors. To improve the electrical conductivity, we introduced carboxylated multi-walled carbon nanotubes to obtain a series of carbon nanotube@COF composites by a facile one-pot method, in which 2D TFA-COFs are grown on the surface of carboxylated multi-walled carbon nanotubes. Among them, the CNT@TFA-COF-3 composite exhibits good crystallinity, regular pores, excellent stability and a specific surface area of 1034 m g. As expected, as a capacitive electrode material, the CNT@TFA-COF composite shows improved electrochemical performance. Notably, the value of specific capacitance of the CNT@TFA-COF-3 composite (338 F g) is about 8.5, 4.9, and 7.5 times higher than those of TFA-COFs, CNTs, and the CNT/TFA-COF physically mixed complex at a current density of 1.0 A g, respectively. Furthermore, the CNT@TFA-COF-3 supercapacitor exhibits long-term cycle chemical stability and splendid rate capability even after 7000 charge-discharge cycles. The successful preparation of the CNT@TFA-COF-3 composite can provide new ideas for the construction of new COF-based composites and the development of new materials for energy storage.
作为一类新兴的晶体有机聚合物,共价有机框架材料(COFs)具有高比表面积、有序的孔结构和可设计性,在储能领域展现出广阔的应用前景。然而,其低电导率阻碍了它们在超级电容器中的潜在应用。为了提高电导率,我们引入了羧基化多壁碳纳米管,通过一种简便的一锅法获得了一系列碳纳米管@COF复合材料,其中二维TFA-COFs生长在羧基化多壁碳纳米管的表面。其中,CNT@TFA-COF-3复合材料表现出良好的结晶性、规则的孔结构、优异的稳定性以及1034 m²/g的比表面积。正如预期的那样,作为一种电容性电极材料,CNT@TFA-COF复合材料显示出改善的电化学性能。值得注意的是,在1.0 A/g的电流密度下,CNT@TFA-COF-3复合材料的比电容值(338 F/g)分别比TFA-COFs、碳纳米管以及CNT/TFA-COF物理混合复合物高约8.5倍、4.9倍和7.5倍。此外,即使经过7000次充放电循环,CNT@TFA-COF-3超级电容器仍表现出长期的循环化学稳定性和出色的倍率性能。CNT@TFA-COF-3复合材料的成功制备可为构建新型COF基复合材料和开发新型储能材料提供新思路。