4.8 Article

Novel Dual-Ion Hybrid Supercapacitor Based on a NiCo2O4 Nanowire Cathode and MoO2-C Nanofilm Anode

Journal

ACS APPLIED MATERIALS & INTERFACES
Volume 8, Issue 44, Pages 30232-30238

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acsami.6b10249

Keywords

nickel cobaltite; molybdenum dioxide; nanostructured electrode; hybrid supercapacitor; dual-ion charge storage

Funding

  1. National Key Research Program of China [2016YFA0202602]
  2. National Natural Science Foundation of China [51672205, 51102105, 11104088]
  3. Youth Chenguang Project of Science and Technology of Wuhan City [2014070404010206]
  4. Science Fund for Distinguished Young Scholars of Hubei Province [2013CFA023]
  5. Fundamental Research Funds for the Central Universities [WUT: 2016IVA083]
  6. Wuhan University of Technology

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Cobalt/nickel-based compounds have been extensively used as cathode (positive electrode) materials in alkaline electrolyte for hybrid supercapacitors (HSCs). In these HSCs, however, the anodes (negative electrodes) are almost carbon-based materials that exhibit limited capacitance, leading to relatively low energy density of the device. Herein, we report a novel dual-ion HSC concept, that is, utilizing anion and cation in the electrolyte, respectively, by the two electrodes for charge storage, to promote the device's performance. Based on this, it is possible to exploit cation consumed metal oxide as a capacitive anode to couple with a cobalt/nickel oxide cathode. As a demonstration, a 1.8 V MoO2-C/LiOH electrolyte/NiCo2O4 HSC device is established. In such a design, NiCo2O4 cathode and MoO2-C anode react with OH- and Li+, respectively, to store energy. With the benefits from enhanced kinetics in NiCo2O4 nanowire array (direct electron transport pathway and sufficient electrolyte/ion penetration) and increased stability and electrical conductivity in carbon-encapsulated MoO2 nanofilm, our device delivers a high capacitance (94.9 F g(-1)), high energy density and power density (41.8 Wh kg(-1) and 19922.2 W kg(-1)), long cycling stability >3000 times, and good rate capability (similar to 3.3 s charging/discharging with 43.6% capacitance retention). The dual-ion charge storage concept will stimulate great interest in the design of high-performing all oxide hybrid electric energy storage systems.

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