High-performance supercapacitor based on highly active P-doped one-dimension/two-dimension hierarchical NiCo2O4/NiMoO4 for efficient energy storage

[Display omitted] •P-doped NiCo2O4/NiMoO4 with 1D/2D hierarchical structure are successfully prepared.•The multi-dimensional structure of the composites makes it easy to transfer charges in the electrolyte.•The binder-free electrode displays an ultra-high capacitance of 2334.0 F g−1.•The assembled h...

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Veröffentlicht in:Journal of colloid and interface science 2021-11, Vol.601, p.793-802
Hauptverfasser: Liu, Yu, Ma, Zhenlin, Xin, Na, Ying, Yulong, Shi, Weidong
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Sprache:eng
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Zusammenfassung:[Display omitted] •P-doped NiCo2O4/NiMoO4 with 1D/2D hierarchical structure are successfully prepared.•The multi-dimensional structure of the composites makes it easy to transfer charges in the electrolyte.•The binder-free electrode displays an ultra-high capacitance of 2334.0 F g−1.•The assembled hybrid supercapacitor achieves a high energy density of 45.1 Wh kg−1. Multi-dimensional metal oxides have become a promising alternative electrode material for supercapacitors due to their inherent large surface area. Herein, P-doped NiCo2O4/NiMoO4 multi-dimensional nanostructures are synthesized on carbon clothes (CC) with a continuous multistep strategy. Especially, P has the best synergistic effect with transition metals, such as optimal deprotonation energy and OH– adsorption energy, which can further enhance electrochemical reaction activity. For the above reasons, the P-NiCo2O4/NiMoO4@CC electrode exhibits an ultra-high specific capacitance of 2334.0 F g−1 at 1 A g−1. After 1500 cycles at a current density of 10 A g−1, its specific capacity still maintains 93.7%. Besides, a P-NiCo2O4/NiMoO4@CC//activated carbon device (hybrid supercapacitor or device) was also prepared with a maximum energy density of 45.1 Wh kg−1 at a power density of 800 W kg−1. In particular, the capacity retention rate is still 89.97% after 8000 cycles due to its excellent structural stability. Our work demonstrates the vast potential of multi-dimensional metal oxides in energy storage.
ISSN:0021-9797
1095-7103
DOI:10.1016/j.jcis.2021.05.095