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用于高性能超级电容器电极的Ni-BTC金属有机骨架@氧化石墨烯复合材料的原位合成

In Situ Synthesis of Ni-BTC Metal-Organic Framework@Graphene Oxide Composites for High-Performance Supercapacitor Electrodes.

作者信息

Chen Tianen, Shen Tao, Wang Yuanhao, Yu Zexu, Zhang Wei, Zhang Yi, Ouyang Zeen, Cai Qingguo, Ji Yaxiong, Wang Shifeng

机构信息

Hoffmann Institute of Advanced Materials, Shenzhen Polytechnic, 7098 Liuxian Boulevard, Nanshan District, Shenzhen 518055, P. R. China.

Innovation Laboratory of Materials for Energy and Environment Technologies, Institute of Oxygen Supply, Tibet University, Lhasa 850000, P.R. China.

出版信息

ACS Omega. 2023 Mar 15;8(12):10888-10898. doi: 10.1021/acsomega.2c07187. eCollection 2023 Mar 28.

Abstract

In response to serious ecological and environmental problems worldwide, a novel graphene oxide (GO) induction method for the in situ synthesis of GO/metal organic framework (MOF) composites (Ni-BTC@GO) for supercapacitors with excellent performance is presented in this study. For the synthesis of the composites, 1,3,5-benzenetricarboxylic acid (BTC) is used as an organic ligand due to its economic advantages. The optimum amount of GO is determined by a comprehensive analysis of morphological characteristics and electrochemical tests. 3D Ni-BTC@GO composites show a similar spatial structure to that of Ni-BTC, revealing that Ni-BTC could provide an effective framework and avoid GO aggregation. The Ni-BTC@GO composites have a more stable electrolyte-electrode interface and an improved electron transfer route than pristine GO and Ni-BTC. The synergistic effects of GO dispersion and Ni-BTC framework on electrochemical behavior are determined, where Ni-BTC@GO 2 achieves the best performance in energy storage performance. Based on the results, the maximum specific capacitance is 1199 F/g at 1 A/g. Ni-BTC@GO 2 has an excellent cycling stability of 84.47% after 5000 cycles at 10 A/g. Moreover, the assembled asymmetric capacitor exhibits an energy density of 40.89 Wh/kg at 800 W/kg, and it still remains at 24.44 Wh/kg at 7998 W/kg. This material is expected to contribute to the design of excellent GO-based supercapacitor electrodes.

摘要

针对全球范围内严重的生态和环境问题,本研究提出了一种新颖的氧化石墨烯(GO)诱导方法,用于原位合成具有优异性能的超级电容器用GO/金属有机框架(MOF)复合材料(Ni-BTC@GO)。对于复合材料的合成,由于其经济优势,使用1,3,5-苯三甲酸(BTC)作为有机配体。通过对形态特征和电化学测试的综合分析确定了GO的最佳用量。三维Ni-BTC@GO复合材料显示出与Ni-BTC相似的空间结构,这表明Ni-BTC可以提供一个有效的框架并避免GO聚集。与原始GO和Ni-BTC相比,Ni-BTC@GO复合材料具有更稳定的电解质-电极界面和改进的电子转移途径。确定了GO分散和Ni-BTC框架对电化学行为的协同作用,其中Ni-BTC@GO 2在储能性能方面表现最佳。基于这些结果,在1 A/g时最大比电容为1199 F/g。Ni-BTC@GO 2在10 A/g下循环5000次后具有84.47%的优异循环稳定性。此外,组装的不对称电容器在800 W/kg时的能量密度为40.89 Wh/kg,在7998 W/kg时仍保持在24.44 Wh/kg。这种材料有望为基于GO的优异超级电容器电极的设计做出贡献。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1f1c/10061599/6b6260f4d225/ao2c07187_0002.jpg

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