Issue 5, 2021

Three-dimensional N-doped super-hydrophilic carbon electrodes with porosity tailored by Cu2O template-assisted electrochemical oxidation to improve the performance of electrical double-layer capacitors

Abstract

Three-dimensional (3D), binder-free, porous carbon-based electrodes exhibit high charge storage ability in electrical double-layer capacitors owing to their well-developed porous structures enhancing mass transfer and achieving relatively high electroconductivity. A 3D N-doped carbon electrode with abundant oxygen-containing functional groups was prepared by depositing a PDA-derived N-doped carbon layer and electrochemical oxidation using a porosity-regulating in situ generated Cu2O sacrificial template. The optimized electrode demonstrated a high specific capacitance of 2852 mF cm−2 at a current density of 1 mA cm−2 and good rate capability. The material was used as an electrode in a symmetric capacitor, exhibiting an energy density of 16.4 mW h cm−3 at a power density of 180 mW cm−3, which maintained 89% of its value after 15 000 cycles. This study describes a new method of manufacturing high-performance porous electrodes suitable for practical application in electric double-layer capacitors.

Graphical abstract: Three-dimensional N-doped super-hydrophilic carbon electrodes with porosity tailored by Cu2O template-assisted electrochemical oxidation to improve the performance of electrical double-layer capacitors

Supplementary files

Article information

Article type
Paper
Submitted
22 Oct 2020
Accepted
13 Dec 2020
First published
15 Dec 2020

J. Mater. Chem. A, 2021,9, 2928-2936

Three-dimensional N-doped super-hydrophilic carbon electrodes with porosity tailored by Cu2O template-assisted electrochemical oxidation to improve the performance of electrical double-layer capacitors

X. Lv, S. Ji, V. Linkov, X. Wang, H. Wang and R. Wang, J. Mater. Chem. A, 2021, 9, 2928 DOI: 10.1039/D0TA10294F

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