4.8 Article

Graphene incorporated, N doped activated carbon as catalytic electrode in redox active electrolyte mediated supercapacitor

Journal

JOURNAL OF POWER SOURCES
Volume 337, Issue -, Pages 25-35

Publisher

ELSEVIER
DOI: 10.1016/j.jpowsour.2016.10.114

Keywords

N doped activated carbon; Graphene incorporation; Redox mediator; Pyrocatechol; Catalytic electrode

Funding

  1. NSFCs [21671059, U1304505]
  2. Innovation Scientists and Technicians Troop Construction Projects of Henan Province [154200510009]
  3. Program for Innovative Research Team and Individuals (in Science and Technology) in University of Henan Province [13IRTSTHN026, 15HASTIT006]
  4. Program for Changjiang Scholars and Innovative Research Team in University

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Graphene incorporated, N doped activated carbons (GNACs) are synthesized by alkali activation of graphene-polypyrrole composite (G-PPy) at different temperatures for application as electrode materials of supercapacitors. Under optimal activation temperature of 700 degrees C, the resultant samples, labeled as GNAC(700), owns hierarchically porous texture with high specific surface area and efficient ions diffusion channels, N, O functionalized surface with apparent pseudocapacitance contribution and high wettability, thus can deliver a moderate capacitance, a high rate capability and a good cycleability when used as supercapacitor electrode. Additionally, the GNAC(700) electrode demonstrates high catalytic activity for the redox reaction of pyrocatechol/o-quinone pair in H2SO4 electrolyte, thus enables a high pseudocapacitance from electrolyte. Under optimal pyrocatechol concentration in H2SO4 electrolyte, the electrode capacitance of GNAC(700) increases by over 4 folds to 512 F g(-1) at 1 A g(-1), an excellent cycleability is also achieved simultaneously. Pyridinic-N is deemed to be responsible for the high catalytic activity. This work provides a promising strategy to ameliorate the capacitive performances of supercapacitors via the synergistic interaction between redox-active electrolyte and catalytic electrodes. (C) 2016 Elsevier B.V. All rights reserved.

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