Multidimensional structure of CoNi2S4 materials: Structural regulation promoted electrochemical performance in a supercapacitor

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Abstract

Multidimensional architectures of CoNi2S4 electrode materials are rationally designed by engineering the surface structure toward that of high-performance supercapacitors. The fabrication of a special morphology is highly dependent on the synergistic effect between the guidance of Co-Ni precursor arrays and a subsequent sulfidation process. The unparalleled CoNi2S4 electrode materials (NS-3) deliver a significantly enhanced specific capacitance (3784.6 F g-1 at 3 A g-1), accompanied by an extraordinary rate capability (2932.3 F g-1 at 20 A g-1) and excellent cycling life. The outstanding supercapacitor performance stated above stems from the advantages of a multidimensional structure generated by crosslinking 2D microsheets/1D nanowires/2D ultrathin nanosheets; this structure supplies additional efficient active sites and a large contact area at the electrode-electrolyte interface, providing faster transport kinetics for electrons and ions. For practical applications, asymmetric devices based on an NS-3 positive electrode and active carbon negative electrode exhibit a high energy density of 38.5 W h kg-1 accompanied by a power density of 374.9 W kg-1 (22 W h kg-1 at 7615.4 W kg-1). The above results indicate that the design of multidimensional Co-Ni-S materials is an effective strategy to achieve a high-performance supercapacitor.

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Han, Y., Sun, S., Cui, W., & Deng, J. (2020). Multidimensional structure of CoNi2S4 materials: Structural regulation promoted electrochemical performance in a supercapacitor. RSC Advances, 10(13), 7541–7550. https://doi.org/10.1039/c9ra10961g

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