Issue 22, 2021

Using thiourea as a catalytic redox-active additive to enhance the performance of pseudocapacitive supercapacitors

Abstract

Adding redox-active additives into the electrolyte is an effective way to enhance the performance of pseudocapacitive supercapacitors (SCs). However, the applications of these redox-active additives are limited by their high molecular weight and narrow redox potential window. Herein, we report thiourea (TU) as a catalytic redox-active additive to enhance the performance of a supercapacitor based on copper nanocrystal@nitrogen-doped carbon composites (Cu@N-C), whose capacitance was increased 5.9 fold: from 194 mF cm−2 (15.7 mA h g−1, without TU) to 1154 mF cm−2 (93.3 mA h g−1, with TU). The optimized Cu@N-C-600 electrode presents a wide voltage window (1.8 V) and an extremely high capacitance (9571 mF cm−2, 775.4 mA h g−1 at 5 mA cm−2), which is mainly attributed to the pseudocapacitance from the reversible redox reaction of TU and Cu compounds. The porous nitrogen-doped carbon matrix immobilizes and protects the highly active Cu nanocrystals, and also facilitates charge and mass transfer between the electrode and electrolyte. For the symmetrical SC based on Cu@N-C-600, the energy density and power density reach 314 μW h cm−2 and 2798 μW cm−2, respectively, superior to those of most of the inorganic material-based SCs. This work demonstrates that TU is an efficient redox-active additive to improve the performance of pseudocapacitive SCs.

Graphical abstract: Using thiourea as a catalytic redox-active additive to enhance the performance of pseudocapacitive supercapacitors

Supplementary files

Article information

Article type
Paper
Submitted
26 Jul 2021
Accepted
11 Oct 2021
First published
12 Oct 2021

Sustainable Energy Fuels, 2021,5, 5733-5740

Using thiourea as a catalytic redox-active additive to enhance the performance of pseudocapacitive supercapacitors

X. Zhang, L. Gao, R. Guo, T. Hu and M. Ma, Sustainable Energy Fuels, 2021, 5, 5733 DOI: 10.1039/D1SE01129D

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