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集成纳米网络结构Ni/NiO/C阳极和氮掺杂碳化金属有机框架阴极的锂离子电容器,具有高功率和长循环寿命。

Li-Ion Capacitor Integrated with Nano-network-Structured Ni/NiO/C Anode and Nitrogen-Doped Carbonized Metal-Organic Framework Cathode with High Power and Long Cyclability.

作者信息

Cheng Chung-Fu, Chen Yu-Ming, Zou Feng, Liu Kewei, Xia Yanfeng, Huang Yi-Fan, Tung Wei-Yao, Krishnan Mohan Raj, Vogt Bryan D, Wang Chien-Lung, Ho Rong-Ming, Zhu Yu

机构信息

Department of Applied Chemistry , National Chiao Tung University , Hsinchu 30010 , Taiwan.

Department of Chemical Engineering , National Tsing Hua University , Hsinchu 30010 , Taiwan.

出版信息

ACS Appl Mater Interfaces. 2019 Aug 28;11(34):30694-30702. doi: 10.1021/acsami.9b06354. Epub 2019 Aug 15.

Abstract

Lithium-ion capacitors (LICs) represent a new type of energy-storage devices, which have combined merits of high energy density Li-ion battery and high power density supercapacitor. Nevertheless, one significant challenge for LICs is the imbalanced kinetics between the fast capacitive cathode and relatively slow intercalation anode that limit the energy-storage performance. Here, the asymmetric LIC devices were developed based on a nitrogen-doped, carbonized zeolitic imidazolate framework (ZIF-8) cathode and a three-dimensional, nano-network-structured, conversion reaction-based Ni/NiO/C anode. These nanostructures associated with both the cathode and anode enable rapid electron and ions transport in the LIC devices, which allows the asymmetric LICs to be operated on either high energy mode (energy density of 114.7 Wh/kg at power density of 98.0 W/kg) or high power mode (power density of 60.1 kW/kg at energy density of 17.6 Wh/kg). The device also exhibited long-term cycle stability with 87% capacitance retention after 12 000 cycles. These results demonstrate that the rational design of nanoporous electrode structures can deliver a balanced, high-performance-activated cZIF-8|Ni/NiO/C-based lithium-ion capacitor.

摘要

锂离子电容器(LICs)是一种新型储能装置,它兼具高能量密度锂离子电池和高功率密度超级电容器的优点。然而,LICs面临的一个重大挑战是快速电容性阴极和相对缓慢的嵌入型阳极之间的动力学不平衡,这限制了储能性能。在此,基于氮掺杂的碳化沸石咪唑酯骨架(ZIF-8)阴极和三维纳米网络结构的基于转化反应的Ni/NiO/C阳极,开发了非对称LIC器件。与阴极和阳极相关的这些纳米结构使得LIC器件中电子和离子能够快速传输,这使得非对称LICs能够在高能量模式(功率密度为98.0 W/kg时能量密度为114.7 Wh/kg)或高功率模式(能量密度为17.6 Wh/kg时功率密度为60.1 kW/kg)下运行。该器件还表现出长期循环稳定性,在12000次循环后电容保持率为87%。这些结果表明,对纳米多孔电极结构进行合理设计可以提供一种基于cZIF-8|Ni/NiO/C的平衡、高性能的活化锂离子电容器。

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