Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
7834764 | Applied Surface Science | 2018 | 10 Pages |
Abstract
ZnCo2O4-rGO composite with intertwined sheets grown onto nickel foam substrate is prepared through a facile hydrothermal deposition and followed thermal annealing treatment, which can be directly employed as binder free electrode of supercapacitor. The hierarchically porous texture of ZnCo2O4-rGO composite with high specific surface area and efficient ions diffusion channels ensures sufficient faradic reaction of ZnCo2O4 component, therefore enables an ultrahigh electrode specific capacitance (Cs) of 3222â¯Fâ¯gâ1 at 1â¯Aâ¯gâ1 in alkali electrolyte, and the Cs still retains to be 860â¯Fâ¯gâ1 at 20â¯Aâ¯gâ1. When used as positive electrode of full cell, the ZnCo2O4-rGO//activated carbon (AC) asymmetric supercapacitor can offer a maximum device specific capacitance (Ccell) of 139â¯Fâ¯gâ1 at 0.5â¯Aâ¯gâ1 and therefore an energy density (Ecell) of 49.1â¯Whâ¯kgâ1 at power density (Pcell) of 400â¯Wâ¯kgâ1. Even at high Pcell of 7625â¯Wâ¯kgâ1, the Ecell of the asymmetric device can still retain to be 18.8â¯Whâ¯kgâ1. More significantly, the asymmetric supercapacitor demonstrates only 6% Ccell fade subjected to 5000 successive charge-discharge cycles. The balanced Ecell, Pcell delivery abilities and high cycleability highlight the potential of the faradic ZnCo2O4-rGO composite in high performance and long lifetime energy storage devices.
Keywords
Related Topics
Physical Sciences and Engineering
Chemistry
Physical and Theoretical Chemistry
Authors
Zhiyong Gao, Lingcui Zhang, Jiuli Chang, Zhen Wang, Dapeng Wu, Fang Xu, Yuming Guo, Kai Jiang,