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Vanadium redox flow batteries (VRFBs) are widely applied in energy storage systems (e.g., wind energy, solar energy), while the poor activity of commonly used carbon-based electrode limits their large-scale application. In this study, the graphene modified carbon felt (G/CF) with a large area of 20 cm ׁ 20 cm has been successfully prepared by a chemical vapor deposition (CVD) strategy, achieving outstanding electrocatalytic redox reversibility of the VRFBs. The decorating graphene can provide abundant active sites for the vanadium redox reactions. Compared with the pristine carbon felt (CF) electrode, the G/CF composite electrode possesses more defective sites on surface, which enhances activity toward VO2+/VO2+ couple and electrochemical performances. For instance, such G/CF electrode delivered remarkable voltage efficiency (VE) of 88.4% and energy efficiency (EE) of 86.4% at 100 mAdcm-2, much higher than CF electrode by 2.1% and 3.78%, respectively. The long-term cycling stability of G/CF electrode was further investigated and a high retention value of 47.6% can be achieved over 600 cycles. It is demonstrated that this work develops a promising and effective strategy to synthesize the large size of carbon electrode with high performances for the next-generation VRFBs.

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Publication history
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Acknowledgements

Publication history

Received: 09 March 2021
Revised: 08 April 2021
Accepted: 01 May 2021
Published: 07 June 2021
Issue date: October 2021

Copyright

© Tsinghua University Press and Springer-Verlag GmbH Germany, part of Springer Nature 2021

Acknowledgements

The authors acknowledge the financial support from the 100 Talented Team of Hunan Province (XiangZu [2016] 91), the "Huxiang high-level talents" program (Nos. 2018RS3077, 2019RS1007, and 2019RS1046), the National Natural Science Foundation of China (No. 52002405), and the Open Fund of National Engineering Laboratory of Highway Maintenance Technology (Changsha University of Science & Technology) (No. kfj170105).

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