JOURNAL ARTICLE

Enhanced specific capacitance of an electrophoretic deposited MnO2-carbon nanotube supercapacitor

Patin TagsinPawinee KlangtakaiViyada HarnchanaVittaya AmornkitbamrungSamuk PimanpangPisist Kumnorkaew

Year: 2017 Journal:   Journal of the Korean Physical Society Vol: 71 (12)Pages: 997-1005   Publisher: Springer Science+Business Media

Abstract

MnO2 and MnO2-carbon nanotubes (CNT) composite films were grown directly on stainless- steel substrates using an electrophoretic process employing supercapacitor electrodes. An electrophoretic MnO2 film with a nanoplate-like structure was observed using scanning electron microscopy (SEM) and transmission electron microscopy (TEM). Supercapacitor performance was studied using cyclic voltammetry (CV), charge-discharge (CD) and electrochemical impedance spectroscopy (EIS). The specific capacitance (SC) of the electrophoretic MnO2 film was 60 F/g at 1 A/g, with a 38.33% retention of the initial SC values after 1000 cycles. The low SC value of the MnO2 films was attributed to the high series and charge-transfer resistances of 1.70 Ω and 3.20, respectively. The MnO2-CNT composites with the addition of 0.04, 0.06 and 0.08 g CNT to the electrophoretic MnO2 film were found to greatly increase the SC to 300, 206 and 169 F/g at 1 A/g, respectively. The series and charge-transferred resistances of MnO2-CNT composite films decreased to 1.38 - 1.52 Ω and 2.62 - 2.86 Ω, respectively. The SC improvement of the composite electrodes was attributed to presence of two active storage materials (MnO2 and CNT), a high film specific surface area and electrical conductivity.

Keywords:
Supercapacitor Materials science Electrophoretic deposition Carbon nanotube Cyclic voltammetry Dielectric spectroscopy Scanning electron microscope Electrophoresis Capacitance Composite number Electrode Transmission electron microscopy Electrochemistry Chemical engineering Analytical Chemistry (journal) Composite material Nanotechnology Chemistry Chromatography

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