Issue 49, 2019

Anchoring carbon layers and oxygen vacancies endow WO3−x/C electrode with high specific capacity and rate performance for supercapacitors

Abstract

Herein, novel hierarchical carbon layer-anchored WO3−x/C ultra-long nanowires were developed via a facile solvent-thermal treatment and a subsequent rapid carbonization process. The inner anchored carbon layers and abundant oxygen vacancies endowed the WO3−x/C nanowire electrode with high conductivity, as measured with a single nanowire, which greatly enhanced the redox reaction active sites and rate performance. Surprisingly, the WO3−x/C electrode exhibited outstanding specific capacitance of 1032.16 F g−1 at the current density of 1 A g−1 in a 2 M H2SO4 electrolyte and maintained the specific capacitance of 660 F g−1 when the current density increased to 50 A g−1. Significantly, the constructed WO3−x/C//WO3−x/C symmetric supercapacitors achieved specific capacitance of 243.84 F g−1 at the current density of 0.5 A g−1 and maintained the capacitance retention of 94.29% after 5000 charging/discharging cycles at the current density of 4 A g−1. These excellent electrochemical performances resulted from the fascinating structure of the WO3−x/C nanowires, showing a great potential for future energy storage applications.

Graphical abstract: Anchoring carbon layers and oxygen vacancies endow WO3−x/C electrode with high specific capacity and rate performance for supercapacitors

Supplementary files

Article information

Article type
Paper
Submitted
23 May 2019
Accepted
29 Jul 2019
First published
12 Sep 2019
This article is Open Access
Creative Commons BY-NC license

RSC Adv., 2019,9, 28793-28798

Anchoring carbon layers and oxygen vacancies endow WO3−x/C electrode with high specific capacity and rate performance for supercapacitors

J. Xu, C. Li, L. Chen, Z. Li and P. Bing, RSC Adv., 2019, 9, 28793 DOI: 10.1039/C9RA03886H

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