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镍钴金属有机框架衍生的中空微球,由纳米棒和纳米球组装而成的多孔碳,用于高性能超级电容器。

Nickel and cobalt metal-organic-frameworks-derived hollow microspheres porous carbon assembled from nanorods and nanospheres for outstanding supercapacitors.

作者信息

Zhou Peng, Wan Jiafeng, Wang Xirui, Xu Ke, Gong Yuguo, Chen Lina

机构信息

School of Chemistry and Material Science, Heilongjiang University, Harbin 150080, China.

出版信息

J Colloid Interface Sci. 2020 Sep 1;575:96-107. doi: 10.1016/j.jcis.2020.04.083. Epub 2020 Apr 22.

DOI:10.1016/j.jcis.2020.04.083
PMID:32361050
Abstract

The development of efficient electrode materials is essential to promote the performance of energy storage equipment. Nowadays, metal organic frameworks (MOFs) have been widely regarded as active materials for supercapacitors mainly thanks to their adjustable structure and outstanding porosity. Here, highly optimized Nickel and Cobalt MOF-derived N-doped porous carbon (Ni/Co-MOF-NPC) are considered the best choice for electrode materials due to their unique structural properties and excellent electrochemical performance. Pure cobalt oxide rarely reaches a specific capacitance of 104.3 F g when the current density is 1 A g, but the optimized Ni/Co-MOF-NPC-2:1 offers an ultra-high specific capacitance of 1214 F g, which is much higher than that of pure cobalt oxide in a three-electrode test system. When the current density is 10 A g, after 6000 cycles, the capacitance can still maintain 98.8% of the initial capacitance. Asymmetric supercapacitors were assembled using the prepared Ni/Co-MOF-NPC-2:1 as the positive electrode material, corrugated paper activated carbon (CPAC) as the negative electrode material, the prepared Ni/Co-MOF-NPC-2:1//CPAC exhibits an outstanding energy density of 55.4 Wh kg at 758.5 W kg, and has a significant cycle stability of 75.2% retention after 20,000 cycles. This excellent MOF synthesis strategy reduced the gap between the experimental synthesis and practical application of MOF in fast energy storage.

摘要

开发高效的电极材料对于提升储能设备的性能至关重要。如今,金属有机框架材料(MOFs)因其可调节的结构和出色的孔隙率而被广泛视为超级电容器的活性材料。在此,高度优化的镍钴MOF衍生的氮掺杂多孔碳(Ni/Co-MOF-NPC)因其独特的结构特性和优异的电化学性能,被认为是电极材料的最佳选择。在电流密度为1 A g时,纯氧化钴很少能达到104.3 F g的比电容,但优化后的Ni/Co-MOF-NPC-2:1在三电极测试系统中提供了1214 F g的超高比电容,远高于纯氧化钴。当电流密度为10 A g时,经过6000次循环后,电容仍能保持初始电容的98.8%。以制备的Ni/Co-MOF-NPC-2:1作为正极材料、波纹纸活性炭(CPAC)作为负极材料组装不对称超级电容器,所制备的Ni/Co-MOF-NPC-2:1//CPAC在758.5 W kg时表现出55.4 Wh kg的出色能量密度,并且在20000次循环后具有75.2%的显著循环稳定性。这种出色的MOF合成策略缩小了MOF在快速储能方面的实验合成与实际应用之间的差距。

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引用本文的文献

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Nanomaterials (Basel). 2020 Nov 16;10(11):2268. doi: 10.3390/nano10112268.