Wang Jiaming, Huang Ying, Han Xiaopeng, Zhang Shuai, Wang Mingyue, Yan Jing, Chen Chen, Zong Meng
MOE Key Laboratory of Material Physics and Chemistry under Extraordinary Conditions, School of Chemistry and Chemical Engineering, Northwestern Polytechnical University, Xi'an 710072, PR China.
MOE Key Laboratory of Material Physics and Chemistry under Extraordinary Conditions, School of Chemistry and Chemical Engineering, Northwestern Polytechnical University, Xi'an 710072, PR China.
J Colloid Interface Sci. 2021 Dec;603:440-449. doi: 10.1016/j.jcis.2021.06.118. Epub 2021 Jun 23.
Metal-organic frameworks (MOFs) become a research hot-spot owing to their unique properties originating from the ultra-high porosity and large specific surface area with highly accessible active sites. However, the electrochemical performance of a single component is unsatisfied when MOFs are applied as electrode material in a supercapacitor. In this work, the hierarchical hollow framework involving interconnected CoS structure and NiO nanosheets (CoS@NiO) are successfully prepared by MOFs derived methods and proposed to electrode materials. As a result, the prepared CoS@NiO electrode materials exhibit a superior specific capacitance of 1627 F g at a current density of 1 A g. Moreover, an assembled hybrid supercapacitor shows a high energy density of 51.65 Wh Kg at a power density of 749.8 W Kg as well as excellent long-term cycling stability with 81.79% capacity retention after 10,000 cycles. Meanwhile, we concluded that the marvelous electrochemical performance is closely associated with the unique structure of NiO, in particular, the nanosheet surface provides a superior specific surface area and rich accessible redox reaction sites, thus enlarged the contact between the surface and interface of the electrode material. Finally, two supercapacitor devices connected in series can light up four light-emitting diodes (LEDs) for about 30 min. Hence, the presented strategy represents a general route for supercapacitor electrode material with promising electrochemical performance, which can combine the MOFs template and other hierarchical nanosheets together.
金属有机框架材料(MOFs)因其独特性能成为研究热点,这些性能源于其超高孔隙率、大比表面积以及具有高度可及的活性位点。然而,当MOFs用作超级电容器的电极材料时,其单一组分的电化学性能并不理想。在本工作中,通过MOFs衍生法成功制备了包含相互连接的CoS结构和NiO纳米片的分级中空框架(CoS@NiO),并将其用作电极材料。结果,所制备的CoS@NiO电极材料在电流密度为1 A g时表现出1627 F g的优异比电容。此外,组装的混合超级电容器在功率密度为749.8 W Kg时显示出51.65 Wh Kg的高能量密度,以及出色的长期循环稳定性,在10000次循环后容量保持率为81.79%。同时,我们得出结论,其出色的电化学性能与NiO的独特结构密切相关,特别是纳米片表面提供了优异的比表面积和丰富的可及氧化还原反应位点,从而扩大了电极材料表面与界面之间的接触。最后,两个串联的超级电容器装置可以点亮四个发光二极管(LED)约30分钟。因此,所提出的策略为具有良好电化学性能的超级电容器电极材料提供了一条通用途径,该途径可以将MOFs模板与其他分级纳米片结合在一起。