Improved conductivity and capacitance of interdigital carbon microelectrodes through integration with carbon nanotubes for micro-supercapacitors

Yanjuan Yang(Wuhan University of Technology), Liang He(Wuhan University of Technology), Chunjuan Tang(Wuhan University of Technology), Ping Hu(Wuhan University of Technology), Xufeng Hong(Wuhan University of Technology), Mengyu Yan(Wuhan University of Technology), Yixiao Dong(Wuhan University of Technology), Xiaocong Tian(Wuhan University of Technology), Qiulong Wei(Wuhan University of Technology), Liqiang Mai(Wuhan University of Technology)
Nano Research
June 23, 2016
Cited by 87

Abstract

In the last decade, pyrolyzed-carbon-based composites have attracted much attention for their applications in micro-supercapacitors. Although various methods have been investigated to improve the performance of pyrolyzed carbons, such as conductivity, energy storage density and cycling performance, effective methods for the integration and mass-production of pyrolyzed-carbon-based composites on a large scale are lacking. Here, we report the development of an optimized photolithographic technique for the fine micropatterning of photoresist/chitosan-coated carbon nanotube (CHIT-CNT) composite. After subsequent pyrolysis, the fabricated carbon/CHIT-CNT microelectrode-based micro-supercapacitor has a high capacitance (6.09 mF·cm–2) and energy density (4.5 mWh·cm–3) at a scan rate of 10 mV·s–1. Additionally, the micro-supercapacitor has a remarkable long-term cyclability, with 99.9% capacitance retention after 10,000 cyclic voltammetry cycles. This design and microfabrication process allow the application of carbon microelectromechanical system (C-MEMS)-based micro-supercapacitors due to their high potential for enhancing the mechanical and electrochemical performance of micro-supercapacitors.


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