Abstract
To boost the electrochemical utilization and area-specific capacitance, core-shell CuCo2O4@MnO2 heterostructured nanowire arrays on carbon fabrics are synthesized and utilized as high-performance, binder-free, positive electrodes for electrochemical capacitors. The electrode architecture takes advantage of the synergistic effects contributed from both the porous CuCo2O4 nanowire core and the MnO2 shell layer. The as-prepared electrode has a high cell-specific capacitance of 327Fg-1, several times higher than that of CuCo2O4 nanowires (57.8Fg-1), at a current density of 1.25Ag-1 with excellent rate capability (90% capacitance retention at a current density of 6.25Ag-1) in aqueous electrolyte. A flexible, all-solid-state symmetrical supercapacitor is fabricated by assembling two CuCo2O4@MnO2 nanowire-based electrodes, a high cell-area-specific capacitance of 714mFcm-2 at 1mAcm-2 is achieved, which is much higher than values reported earlier. It delivers a high energy density of 94.3Whcm-2 at a power density of 0.4757mWcm-2 for a voltage window of 1V. Highly stable electrochemical performance over 3000cycles is obtained, even when the device is operated under harsh mechanical conditions. These results suggest that the as-prepared CuCo2O4@MnO2/carbon fabric composite architecture is very promising for next-generation high-performance supercapacitors, and this work opens up a novel design of advanced integrated-array electrode materials for high-performance supercapacitors.
Original language | English |
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Pages (from-to) | 559-564 |
Number of pages | 6 |
Journal | ChemElectroChem |
Volume | 1 |
Issue number | 3 |
DOIs | |
Publication status | Published - 1 Mar 2014 |
Externally published | Yes |
Keywords
- Core-shell structures
- Electrochemistry
- Hydrothermal synthesis
- Nanostructures
- Supercapacitors