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用于超高体积/重量能量密度混合超级电容器的3D碳纳米管/石墨烯网络导电基底负载的金属有机框架衍生的CoZnNiS纳米片阵列

3D CNTs/graphene network conductive substrate supported MOFs-derived CoZnNiS nanosheet arrays for ultra-high volumetric/gravimetric energy density hybrid supercapacitor.

作者信息

Liu Yu, Xin Na, Yang Qingjun, Shi Weidong

机构信息

School of Chemistry and Chemical Engineering, Jiangsu University, Zhenjiang 212013, PR China.

School of Chemistry and Chemical Engineering, Jiangsu University, Zhenjiang 212013, PR China.

出版信息

J Colloid Interface Sci. 2021 Feb 1;583:288-298. doi: 10.1016/j.jcis.2020.08.128. Epub 2020 Sep 15.

DOI:10.1016/j.jcis.2020.08.128
PMID:33007585
Abstract

With the increasing demand for miniaturization and portable energy storage system, it is an urgent necessary that developing high volumetric energy density supercapacitors with small volumes. Herein, an integrated self-supporting CoZnNiS@CNTs/rGO composite film electrode with the thickness of about 6 μm was designed. In the unique structure, porous CNTs/rGO film is served as conductive substrate to support the CoZn-MOFs derived vertically oriented two-dimensional CoZnNiS nanoarrays. The self-supporting film endows the electrode a high volumetric mass density of 1.28 g cm and superior electron-ion transport channel, which displays a maximum specific capacitance of 1349.2 F g as well as high volumetric capacity of 1727.0 F cm at 1 A g. Besides, a porous film of pure carbon materials (carbon spheres integrated graphene) was designed and used as the negative electrode in supercapacitor. When assembled a hybrid supercapacitor based on the above two self-supporting electrodes, the device delivers up an ultra-high volumetric/gravimetric energy density of 65.2 W h L (60.4 W h kg) at a power density of 1308 W L (1200 W kg). Moreover, the asymmetric supercapacitor also displays an ultra-long lifetime with 90.6% retention after 10,000 cycles. These outstanding performances make the CoZnNiS@CNTs/rGO electrode could be a promising candidate for next-generation high volumetric/gravimetric energy density supercapacitors, especially in the limited space.

摘要

随着对小型化和便携式储能系统需求的不断增加,开发具有小体积的高体积能量密度超级电容器变得迫切必要。在此,设计了一种厚度约为6μm的集成自支撑CoZnNiS@CNTs/rGO复合薄膜电极。在这种独特的结构中,多孔CNTs/rGO薄膜用作导电基底,以支撑由CoZn-MOFs衍生的垂直取向二维CoZnNiS纳米阵列。这种自支撑薄膜赋予电极1.28 g cm的高体积质量密度和优异的电子-离子传输通道,在1 A g下显示出1349.2 F g的最大比电容以及1727.0 F cm的高体积容量。此外,设计了一种纯碳材料的多孔薄膜(碳球集成石墨烯)并用作超级电容器的负极。当基于上述两个自支撑电极组装混合超级电容器时,该器件在1308 W L(1200 W kg)的功率密度下提供高达65.2 W h L(60.4 W h kg)的超高体积/重量能量密度。此外,不对称超级电容器还显示出超长的寿命,在10000次循环后保留率为90.6%。这些优异的性能使得CoZnNiS@CNTs/rGO电极有望成为下一代高体积/重量能量密度超级电容器的候选材料,特别是在有限的空间中。

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