Tang Tingting, Yuan Renlu, Guo Nannan, Zhu Jiayao, Gan Xuemeng, Li Qiqi, Qin Fuwei, Luo Wanxia, Wang Luxiang, Zhang Su, Song Huaihe, Jia Dianzeng
State Key Laboratory of Chemistry and Utilization of Carbon Based Energy Resources, College of Chemistry, Xinjiang University, Urumqi, 830017, Xinjiang, PR China.
State Key Laboratory of Chemical Resource Engineering, Beijing Key Laboratory of Electrochemical Process and Technology for Materials, Beijing University of Chemical Technology, Beijing, 100029, PR China.
J Colloid Interface Sci. 2022 Oct;623:77-85. doi: 10.1016/j.jcis.2022.04.161. Epub 2022 May 6.
Metal-organic frameworks (MOFs) have emerged as promising precursors to prepare porous carbons due to their unique coordination structure with abundant pores and various chemical compositions. However, the structural collapse and pore shrinkage during pyrolysis severely decrease the surface area of the prepared porous carbons. Herein, we propose an inner support strategy to prepare MOF-derived carbons with improved surface area using graphene quantum dots (GQDs) as the compatible frameworks. GQDs with abundant carboxyl groups (-COOH) and rigid structure can uniformly distribute in MOF-5 precursor by coordinating with [ZnO] clusters and effectively reinforce the carbon skeleton during pyrolysis. Therefore, the rational GQDs embedded MOF-5 derived porous carbon (GMPC-0.35) shows greatly improved specific surface area (1841 m g) and mesopore volume (1.62 cm g) than pure MOF-5 derived carbon (1358 m g, 0.59 cm g). As an application exemplification, GMPC-0.35 performs high specific capacitance of 200 F g at 1 A g and good capacitance retention of 53% at 100 A g as the electrode material for supercapacitors, which are higher than most of the reported MOF-5 derived carbons. Therefore, the compatible GQDs support is promising for preparing functional MOF-derived carbon materials.
金属有机框架材料(MOFs)因其独特的具有丰富孔隙和各种化学组成的配位结构,已成为制备多孔碳的有前景的前驱体。然而,热解过程中的结构坍塌和孔隙收缩严重降低了所制备多孔碳的表面积。在此,我们提出一种内支撑策略,以石墨烯量子点(GQDs)作为兼容框架来制备具有改善表面积的MOF衍生碳。具有丰富羧基(-COOH)和刚性结构的GQDs可通过与[ZnO]簇配位而均匀分布在MOF-5前驱体中,并在热解过程中有效增强碳骨架。因此,合理嵌入GQDs的MOF-5衍生多孔碳(GMPC-0.35)相比于纯MOF-5衍生碳(1358 m²/g,0.59 cm³/g),其比表面积(1841 m²/g)和中孔体积(1.62 cm³/g)有显著提高。作为一个应用示例,作为超级电容器的电极材料,GMPC-0.35在1 A/g时具有200 F/g的高比电容,在100 A/g时具有53%的良好电容保持率,高于大多数已报道的MOF-5衍生碳。因此,兼容的GQDs支撑对于制备功能性MOF衍生碳材料具有前景。