Three-Dimensional Hierarchical Nickel-Cobalt-Sulfide Nanostructures For High Performance Electrochemical Energy Storage Electrodes

Journal of Materials Chemistry(2016)

Cited 52|Views10
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Abstract
To meet the ever-growing global demand for highly efficient and reliable energy storage systems, novel three-dimensional (3D) hierarchical porous cobalt-nickel-sulfide, H-(Co, Ni)(3)S-2, nanostructures were designed and fabricated. The electrodes, based on a 3D hierarchical, porous nanoarchitecture, exhibit outstanding comprehensive performance with ultra-high specific capacitance of 4840 F g(-1) (7.3 F cm(-2)) at current density of 1 A g(-1), excellent rate capability of 3984 F g(-1) (6.0 F cm(-2)) even at 20 A g(-1), and superior cycling stability with as high as 93% capacitance retention after 5000 cycles at 10 A g(-1). The performance greatly exceeds most previously reported faradaic electrodes for supercapacitors, due to the hierarchical, porous nanostructures, large active ion accessible surface area, varied and efficient faradic redox reactions, as well as strong mechanical stability and robust adhesion to the conductive matrix. Supercapacitors based on the 3D hierarchical H-(Co, Ni)(3)S-2 nanostructured electrodes possess not only outstanding power and life performance, but also competitive energy densities, compared to the current, popular batteries.
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Key words
High-Performance Electrodes,Electrolyte Design,Nano-composites,Hybrid Energy Storage,High Energy Density
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