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Alcohol mediated growth of α-MnO2thin films from KMnO4precursor for high performance supercapacitors
Author(s) -
Nilesh R. Chodankar,
Girish S. Gund,
Deepak P. Dubal,
C.D. Lokhande
Publication year - 2014
Publication title -
rsc advances
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.746
H-Index - 148
ISSN - 2046-2069
DOI - 10.1039/c4ra09268f
Subject(s) - supercapacitor , thin film , materials science , electrochemistry , methanol , energy storage , chemical engineering , power density , chemical bath deposition , electrode , capacitance , deposition (geology) , nanotechnology , chemistry , power (physics) , organic chemistry , paleontology , physics , quantum mechanics , sediment , engineering , biology
Energy storage devices, with low cost, high energy density, high power density, and long cycle life, have prime importance in order to solve the problem of interrupted power supply of renewable generation systems. In the present work, MnO₂ thin films have been deposited by a simple, scalable, additive-free, binder-less, low cost, low temperature and eco-friendly chemical bath deposition method. The impact of three different alcohols (methanol, ethanol, 2-propenol) as reducing agents on the morphological, structural and electrochemical properties of MnO₂ thin film is investigated. The MnO₂ thin film prepared with the methanol as the reducing agent exhibits high specific surface area with excellent electrochemical features such as high specific capacitance of 633 F g⁻¹ and high energy density of 65.9 W h kg⁻¹ at current density of 1 mA cm⁻² along with a good cycling stability of 95% after 2000 CV cycles. Such leading electrochemical properties suggest that MnO₂ thin film prepared with methanol as the reducing agent using chemical bath deposition is a significant method to prepare reliable electrode material for future energy storage devices.Nilesh R. Chodankar, Girish S. Gund, Deepak P. Dubal and Chandrakant D. Lokhand

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