Electrochemical behavior of CuO/rGO nanopellets for flexible supercapacitor, non-enzymatic glucose, and H2O2 sensing application
- Authors
- Lohar, G. M.; Pore, O. C.; Fulari, A., V
- Issue Date
- Jun-2021
- Publisher
- ELSEVIER SCI LTD
- Keywords
- Supercapacitor; Specific capacitance; Graphene oxide; Glucose sensor; Copper oxide
- Citation
- CERAMICS INTERNATIONAL, v.47, no.12, pp 16674 - 16687
- Pages
- 14
- Indexed
- SCIE
SCOPUS
- Journal Title
- CERAMICS INTERNATIONAL
- Volume
- 47
- Number
- 12
- Start Page
- 16674
- End Page
- 16687
- URI
- https://scholarworks.dongguk.edu/handle/sw.dongguk/25770
- DOI
- 10.1016/j.ceramint.2021.02.238
- ISSN
- 0272-8842
1873-3956
- Abstract
- In the present article, graphene oxide (GO) sheets and monoclinic copper oxide (CuO) nanocrystals are connected with each other and result in the formation of CuO/rGO nanopellets, and these nanopellets synthesized using coprecipitation method. The nanopellet structured CuO/rGO composite on carbon cloth, which act as current collector exhibits specific capacitance of 188 F g-1 at a current density of 0.2 A g-1 and up to 96.3% capacity retention after 2000 charge-discharge cycles. It shows a maximum energy density of 7.32 Wh kg- 1 and power density of 53 W kg- 1. The glucose sensing characteristics of CuO/rGO nanopellet is investigated on carbon cloth and ITO substrate. It shows glucose sensitivity of 0.805 mA mM-1 cm-2 and 0.2982 mA mM-1 cm-2 for a bundle like structured CuO/rGO composite on carbon cloth and ITO substrate, respectively. Further H2O2 sensing is studied on ITO substrate, which manifests H2O2 sensitivity of 84.39 mu A mM-1 cm-2. The results indicate that nanopellet structured CuO/rGO composite could be a promising electrode material for supercapacitor, glucose, and H2O2 sensor.
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