4.8 Article

Three-Dimensional Hierarchically Ordered Porous Carbons with Partially Graphitic Nanostructures for Electrochemical Capacitive Energy Storage

Journal

CHEMSUSCHEM
Volume 5, Issue 3, Pages 563-571

Publisher

WILEY-V C H VERLAG GMBH
DOI: 10.1002/cssc.201100618

Keywords

carbon; electrochemistry; energy storage; nanostructures; supercapacitors

Funding

  1. National Science Council, Taiwan [NSC99-2113M-007-007-MY3]
  2. Max Planck Society
  3. Deutschen Akademischen Austausch Dienst (DAAD, Germany)

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Three-dimensional, hierarchically ordered, porous carbon (HOPC) with designed porous textures, serving as an ion-buffering reservoir, an ion-transport channel, and a charge-storage material, is expected to be advanced an energy material for high-rate supercapacitors. Herein, HOPC without/with partially graphitic nanostructures have been directly synthesized by means of a simple one-pot synthesis procedure. The designed porous textures of the 3D HOPC materials are composed of highly ordered, fcc macroporous (300 nm), interconnected porous structures, including macroporous windows (170 nm), hexagonally ordered mesopores (5.0 nm), and useful micropores (1.2 nm). 3D HOPC-g-1000 (g=graphitic, 1000=pyrolysis temperature of 1000 degrees C) with partially graphitic nanostructures has a low specific surface area (296 m2 g-1) and a low gravimetric specific capacitance (73.4 F g-1 at 3 mV s-1), but improved electrical conductivity, better rate performance, higher electrolyte accessibility (24.8 mu F cm-2 at 3 mV s-1), faster frequency response (similar to 1 Hz), and excellent cycling performance (>5400 cycles). The specific capacitance per surface area is higher than that of conventional porous carbons, carbon nanotubes, and modified graphene (10-19 mu F cm(-2)).

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