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Graphene and carbon nanotube composite electrodes for supercapacitors with ultra-high energy density

Physical Chemistry Chemical Physics · 2011 · Vol. 13(39) · pp. 17615–17615
Qian ChengJie TangJun MaHan ZhangNorio ShinyaLu‐Chang Qin

Abstract

We describe a graphene and single-walled carbon nanotube (SWCNT) composite film prepared by a blending process for use as electrodes in high energy density supercapacitors. Specific capacitances of 290.6 F g(-1) and 201.0 F g(-1) have been obtained for a single electrode in aqueous and organic electrolytes, respectively, using a more practical two-electrode testing system. In the organic electrolyte the energy density reached 62.8 Wh kg(-1) and the power density reached 58.5 kW kg(-1). The addition of single-walled carbon nanotubes raised the energy density by 23% and power density by 31% more than the graphene electrodes. The graphene/CNT electrodes exhibited an ultra-high energy density of 155.6 Wh kg(-1) in ionic liquid at room temperature. In addition, the specific capacitance increased by 29% after 1000 cycles in ionic liquid, indicating their excellent cyclicity. The SWCNTs acted as a conductive additive, spacer, and binder in the graphene/CNT supercapacitors. This work suggests that our graphene/CNT supercapacitors can be comparable to NiMH batteries in performance and are promising for applications in hybrid vehicles and electric vehicles.

Supercapacitor Materials and FabricationAdvancements in Battery MaterialsAdvanced battery technologies researchSupercapacitorGrapheneMaterials scienceCarbon nanotubeElectrolytePower densityElectrodeCapacitanceComposite numberIonic liquid

MeSH terms

ElectrodesGraphiteModels, MolecularParticle SizeSurface PropertiesNanotubes, Carbon

Funding

  • Japan Society for the Promotion of Science
  • National Institute of Mental Health
Citations
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Graphene and carbon nanotube composite electrodes for supercapacitors with ultra-high energy density · Scinovex