Effect of Mn:(CuO/Cu(OH)(2)) Electrodes for Supercapacitors Application
- Authors
- Nikam, S. R.; Shinde, K.; Dubal, D. P.; Ghodake, G. S.; Dhaygude, H. D.; Relekar, B. P.; Lohar, G. M.; Fulari, V. J.
- Issue Date
- Aug-2015
- Publisher
- AMER SCIENTIFIC PUBLISHERS
- Keywords
- SILAR Method; CuO Electrode; Hybrid Nanostructures; Supercapacitors
- Citation
- ADVANCED SCIENCE LETTERS, v.21, no.8, pp 2590 - 2593
- Pages
- 4
- Indexed
- SCOPUS
- Journal Title
- ADVANCED SCIENCE LETTERS
- Volume
- 21
- Number
- 8
- Start Page
- 2590
- End Page
- 2593
- URI
- https://scholarworks.dongguk.edu/handle/sw.dongguk/24551
- DOI
- 10.1166/193666115816678998
- ISSN
- 1936-6612
1936-7317
- Abstract
- In the present study, we report structural and electrochemical properties of Mn:(CuO/Cu(OH)(2)) electrodes were investigable made-up on stainless steel via surfactant-free and inexpensive successive ionic layer adsorption and reaction (SILAR) method. Further, these CuO(CuOH)(2) and 3% Mn:CuO(CuOH)(2) electrodes exhibits outstanding surface properties like uniform growth on surface, high surface area and uniform pore size distribution of pure and doped CuO samples. The electrochemical properties of pure and 3% Mn doped (CuO(CuOH)(2)) nanostructure have been investigated by cyclic voltammetry, charge discharge. The electrochemical studies of the pure and 3% Mn doped (CuO(CuOH)(2)) samples show evident influence of surface properties on the pseudo capacitance performance. The maximum specific capacitances of nanoflowers like CuO electrodes are found to be 597 Fg(-1), respectively at 5 mV s(-1) scan rate. Present investigation suggests the inexpensive SILAR move toward for fine modification surface properties of 3% Mn:(CuO(CuOH)(2)) materials for energy storage applications.
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Collections - College of Life Science and Biotechnology > Department of Biological and Environmental Science > 1. Journal Articles

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