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The coaxial nanostructure of ruthenium oxide thin films coated onto the vertically grown graphitic nanofibers for electrochemical supercapacitor

Authors :
Tsung-Kuang Yeh
Chien-Kuo Hsieh
Ming-Chi Tsai
Hsuan-Chung Wu
Jhen-Jie Jhao
Che-Hsien Lin
Source :
Surface and Coatings Technology. 320:263-269
Publication Year :
2017
Publisher :
Elsevier BV, 2017.

Abstract

In this work, the coaxial nanostructure of ruthenium oxide (RuO x ) thin films coated onto the surface of the vertical graphitic nanofibers (GNFs) was developed and employed as electrodes for electrochemical supercapacitor. The vertically aligned GNFs were directly grown on the fluorine doped tin oxide glass via the chemical vapor deposition, and the RuO x thin films were prepared by an easy cyclic voltammetric electrochemical deposition. The morphologies and nanostructures of the coaxial-nanostructure RuO x /GNFs were investigated by the field emission gun scanning electron microscopy and the high-resolution transmission electron microscopy, respectively. Raman spectrum was used to examine the characteristic features of the RuO x /GNFs. The electrochemical properties were examined by cyclic voltammetry, galvanostatic charge-discharge, and electrochemical impedance spectra. The directly grown GNFs not only played the attractive template that offered a large surface area to promote the loading of RuO x for enhancing electrochemical activity, but also provided a high-speed pathway that promoted charge transport and transfer. The macroporous structure of the vertically coaxial-nanostructure RuO x /GNFs avoided the self-aggregation, thus allowed the electrolyte can easily diffuse through the open space between them to enhance the electrochemical performance. The electrochemical measurements revealed that the excellent charge storage properties of the RuO x /GNFs can be obtained, the good electrochemical performance was attributed to the unique macroporous structure and the coaxial nanostructure of RuO x /GNFs.

Details

ISSN :
02578972
Volume :
320
Database :
OpenAIRE
Journal :
Surface and Coatings Technology
Accession number :
edsair.doi...........9f76f55fe03afd5ab0a566f1cbbda001
Full Text :
https://doi.org/10.1016/j.surfcoat.2017.01.006