Issue 24, 2014

Electrochemical properties of oxygenated cup-stacked carbon nanofiber-modified electrodes

Abstract

Oxygenated cup-stacked carbon nanofibers (CSCNFs), the surface of which provides highly ordered graphene edges and oxygen-containing functional groups, were investigated as electrode materials by using typical redox species in electrochemistry, Fe2+/3+, [Fe(CN)6]3−/4−, and dopamine. The electron transfer rates for these redox species at oxygenated CSCNF electrodes were higher than those at edge-oriented pyrolytic graphite and glassy carbon electrodes. In addition, the oxygen-containing functional groups also contributed to the electron transfer kinetics at the oxygenated CSCNF surface. The electron transfer rate of Fe2+/3+ was accelerated and that of [Fe(CN)6]3−/4− was decelerated by the oxygen-containing groups, mainly due to the electrostatic attraction and repulsion, respectively. The electrochemical reaction selectivities at the oxygenated CSCNF surface were tunable by controlling the amount of nanofibers and the oxygen/carbon atomic ratio at the nanofiber surface. Thus, the oxygenated CSCNFs would be useful electrode materials for energy-conversion, biosensing, and other electrochemical devices.

Graphical abstract: Electrochemical properties of oxygenated cup-stacked carbon nanofiber-modified electrodes

Article information

Article type
Paper
Submitted
24 Mar 2014
Accepted
24 Apr 2014
First published
12 May 2014

Phys. Chem. Chem. Phys., 2014,16, 12209-12213

Author version available

Electrochemical properties of oxygenated cup-stacked carbon nanofiber-modified electrodes

S. Ko, T. Tatsuma, A. Sakoda, Y. Sakai and K. Komori, Phys. Chem. Chem. Phys., 2014, 16, 12209 DOI: 10.1039/C4CP01278J

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