4.8 Article

Graphene-nickel cobaltite nanocomposite asymmetrical supercapacitor with commercial level mass loading

Journal

NANO RESEARCH
Volume 5, Issue 9, Pages 605-617

Publisher

TSINGHUA UNIV PRESS
DOI: 10.1007/s12274-012-0246-x

Keywords

Graphene; nickel cobaltite (NiCo2O4); supercapacitor; energy density; power density

Funding

  1. Natural Sciences and Engineering Research Council of Canada (NSERC) Discovery
  2. National Institute for Nanotechnology (NINT) National Research Council (NRC)

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A high performance asymmetric electrochemical supercapacitor with a mass loading of 10 mg center dot cm(-2) on each planar electrode has been fabricated by using a graphene-nickel cobaltite nanocomposite (GNCC) as a positive electrode and commercial activated carbon (AC) as a negative electrode. Due to the rich number of faradaic reactions on the nickel cobaltite, the GNCC positive electrode shows significantly higher capacitance (618 F center dot g(-1)) than graphene-Co3O4 (340 F center dot g(-1)) and graphene-NiO (375 F center dot g(-1)) nanocomposites synthesized under identical conditions. More importantly, graphene greatly enhances the conductivity of nickel cobaltite and allows the positive electrode to charge/discharge at scan rates similar to commercial AC negative electrodes. This improves both the energy density and power density of the asymmetric cell. The asymmetric cell composed of 10 mg GNCC and 30 mg AC displayed an energy density in the range of 19.5 Wh center dot kg(-1) with an operational voltage of 1.4 V. At high sweep rate, the system is capable of delivering an energy density of 7.6 Wh center dot kg(-1) at a power density of about 5600 W center dot kg(-1). Cycling results demonstrate that the capacitance of the cell increases to 116% of the original value after the first 1600 cycles due to a progressive activation of the electrode, and maintains 102% of the initial value after 10000 cycles.

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