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基于金属有机骨架/壳聚糖复合材料的分级多孔碳用于高性能超级电容器。

Hierarchically Porous Carbons Derived from Metal-Organic Framework/Chitosan Composites for High-Performance Supercapacitors.

机构信息

Research Institute of Electrochemical Energy, National Institute of Advanced Industrial Science and Technology (AIST), Ikeda, Osaka, 563-8577, Japan.

Graduate School of Engineering, Kobe University, Kobe, Hyogo, 657-8501, Japan.

出版信息

Chem Asian J. 2019 Oct 15;14(20):3583-3589. doi: 10.1002/asia.201900318. Epub 2019 May 14.

Abstract

Hierarchically porous carbon materials with high surface areas are promising candidates for energy storage and conversion. Herein, the facile synthesis of hierarchically porous carbons through the calcination of metal-organic framework (MOF)/chitosan composites is reported. The effects of the chitosan (CS) additive on the pore structure of the resultant carbons are discussed. The corresponding MOF/chitosan precursors could be readily converted into hierarchically porous carbons (NPC-V, V=1, 2, 4, and 6) with much higher ratios of meso-/macropore volume to micropore volume (V /V ). The derived carbon NPC-2 with the high ratio of V /V =1.47 demonstrates a high specific surface area of 2375 m  g , and a high pore volume of 2.49 cm  g , as well as a high graphitization degree, in comparison to its counterpart (NPC) without chitosan addition. These excellent features are favorable for rapid ion diffusion/transport, endowing NPC-2 with enhanced electrochemical behavior as supercapacitor electrodes in a symmetric electrode system, corresponding to a high specific capacitance of 199.9 F g in the aqueous electrolyte and good rate capability. Good cycling stability is also observed after 10 000 cycles.

摘要

具有高比表面积的分级多孔碳材料是储能和转换的有前途的候选材料。在此,通过金属有机骨架(MOF)/壳聚糖复合材料的煅烧报告了分级多孔碳的简便合成。讨论了壳聚糖(CS)添加剂对所得碳的孔结构的影响。相应的 MOF/壳聚糖前体可以很容易地转化为具有更高的中/大孔体积与微孔体积比(V/V)的分级多孔碳(NPC-V,V=1、2、4 和 6)。高 V/V 比(V/V=1.47)的衍生碳 NPC-2 表现出 2375 m 2/g 的高比表面积和 2.49 cm 3/g 的高孔体积,以及高石墨化程度,与没有壳聚糖添加的对应物(NPC)相比。这些优异的特性有利于快速离子扩散/传输,使 NPC-2 在对称电极系统中作为超级电容器电极具有增强的电化学行为,在水性电解质中对应 199.9 F/g 的高比电容和良好的倍率性能。在 10000 次循环后也观察到良好的循环稳定性。

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