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Rapid Carbothermal Shock Enhances the Double-Layer Response of Graphene Oxide–Carbon Nanotube Electrodes

Authors :
Ko, Jesse S.
Meng, Po Yu
Elazar-Mittelman, Hadas
Johnson, James K.
Xia, Zhiyong
Holdren, Scott
Source :
Energy & Fuels; November 2021, Vol. 35 Issue: 21 p17919-17929, 11p
Publication Year :
2021

Abstract

Graphene oxide and carbon nanotube composites are considered to be an ideal electrode for electrochemical energy storage and conversion. Herein, we prepare electrodes via a green synthesis that yields a binderless, flexible, and free-standing electrode. To improve the performance of these electrodes comprising graphene oxide and carbon nanotubes (GO–CNT), we carry out carbothermal shock (CTS), which reduces graphene oxide in a rapid (millisecond time scale) and tunable manner (1000–2000 K). When CTS is employed, the specific capacitance of GO–CNT increases by 50%, from 30 to 45 F g–1, for reduced GO–CNT (GO–CNT_CTS). When benchmarking against activated carbon, both GO–CNT and GO–CNT_CTS outperform in terms of capacitance and rate capability. We then examine impedance spectroscopy data in the form of two-dimensional color-mapped surface plots to analyze the dependence of the real and imaginary capacitance and the phase angle as a function of both frequency and potential. This analysis provides key mechanistic insight into the electrochemical double-layer response, such as the characteristic relaxation time and charge-transfer resistance. This analysis shows that, upon CTS, the relaxation times of GO–CNT-based electrodes are 70% faster than that of activated carbon and charge-transfer resistances are reduced dramatically.

Details

Language :
English
ISSN :
08870624 and 15205029
Volume :
35
Issue :
21
Database :
Supplemental Index
Journal :
Energy & Fuels
Publication Type :
Periodical
Accession number :
ejs58103885
Full Text :
https://doi.org/10.1021/acs.energyfuels.1c02450