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NiCo-layered double-hydroxide and carbon nanosheets microarray derived from MOFs for high performance hybrid supercapacitors

机译:Nico层层双氢氧化物和碳纳米片微阵列衍生自用于高性能杂交超级电容器的MOFS

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Exploring porous nano-structured materials has great significance for energy storage equipment. The metal-organic frameworks (MOFs) can be used as the outstanding sacrificial templates for electrode material of high performance supercapacitors due to their superior features that high specific surface area and tunable pore size distribution. However, the poor conductivity of MOFs is one of the biggest barriers to achieve high rate capacity and stable cycling performance. Herein, MOFs derived NiCo-layered double-hydroxide (NiCo-LDH) and nitrogen-doped carbon nanosheets (NC) on the flexible carbon nanotubes (CNTs) film are rationally designed, both of which as the binder-free electrodes can greatly improve the specific surface area and reaction sites. An asymmetric supercapacitor based on porous NiCo-LDH nanosheets on CNTs (CNT@NiCo-LDH) as the positive electrode and the NC nanosheets on carbon nanotubes film (CNT@NC) as the negative electrode exhibits the maximum energy density of 37.4 W h/kg at the power density of 750 W/kg, as well as a long-term cycling stability (94.5% capacity retention after 5000 cycles). Rationally design such combination is a meaningful process for energy storage equipment with excellent electrochemical performance. (C) 2018 Published by Elsevier Inc.
机译:探索多孔纳米结构材料对储能设备具有重要意义。由于其高特异性表面积和可调谐孔径分布,金属有机框架(MOF)可以用作高性能超级电容器的电极材料的优异牺牲模板。然而,MOF的电导率差是实现高速能力和稳定循环性能的最大障碍之一。在此,在柔性碳纳米管(CNT)薄膜上衍生的Nico层双氢氧化物(NiCO-LDH)和氮掺杂碳纳米片(NC)的MOFS是合理设计的,其两者都可以大大改善粘合剂电极比表面积和反应位点。基于多孔NiCO-LDH纳米片的非对称超微普及作为负电极的正电极和NC纳米液(CNT @ NC)的正电极和NC纳米晶片,因为负电极表现出37.4WH的最大能量密度KG以750W / kg的功率密度,以及长期循环稳定性(5000次循环后94.5%的容量保留)。理性设计这种组合是具有优异电化学性能的能量存储设备的有意义过程。 (c)2018由elsevier公司出版

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