Binary mixed metal oxide sphere-like structures for hybrid supercapacitor electrode with improved electrochemical propertiesopen access
- Authors
- Sivakumar, Periyasamy; Kulandaivel, Loganathan; Park, JeongWon; Raj, C. Justin; Savariraj, A. Dennyson; Manikandan, Ramu; Rajendran, Ramesh; Jung, Hyun
- Issue Date
- Aug-2023
- Publisher
- Elsevier
- Keywords
- NiWO4; WO3; Nanostructures; Heat treatment temperature; Redox reactions; Energy storage; Hybrid supercapacitor
- Citation
- Surfaces and Interfaces, v.40, pp 1 - 9
- Pages
- 9
- Indexed
- SCIE
SCOPUS
- Journal Title
- Surfaces and Interfaces
- Volume
- 40
- Start Page
- 1
- End Page
- 9
- URI
- https://scholarworks.dongguk.edu/handle/sw.dongguk/21123
- DOI
- 10.1016/j.surfin.2023.103115
- ISSN
- 2468-0230
2468-0230
- Abstract
- The facile fabrication of stable and highly efficient metal oxide-based electrode materials by regulating the electroactive sites is crucial for supercapacitor applications. In this work, a two-step synthesis strategy comprising hydrothermal and heat treatment was employed to prepare the NiWO4/WO3 (NW/W-O) as electrode materials for supercapacitors. Moreover, the heat treatment temperature influences and alters the physicochemical and electrochemical properties of the obtained NW/W-O products. The material prepared at 500 degrees C (NW/W-O(A)) unveils low crystallinity, small particle size, and a large surface area with a narrow porous feature than the material obtained at 600 degrees C (NW/W-O(B)). Thus, the NW/W-O(A) electrode could be anticipated for effective charge transfer and better capacitive behavior. Notably, the NW/W-O(A) material exhibited a superior specific capacitance of 825 F g-1 than NW/W-O(B) with 536 F g-1 at a current density of 1 A g-1. Further, the NW/W-O(A) displayed a higher rate capability of 60% (@ 20 A g-1) than that of NW/W-O(B) (49%). The designed hybrid supercapacitor (NW/W-O(A)//AC) showed a high specific capacitance of 108 F g-1 and energy density of 33.77 Wh kg-1 at a power density of 896.39 W kg-1 with long-term cyclic retention of only <12% deterioration over 10,000 cycles. Hence, this work demonstrates that the influence of heat treatment temperature is a crucial parameter in tailoring electrode materials with promising energy storage capability.
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- Appears in
Collections - College of Engineering > Department of Energy and Materials Engineering > 1. Journal Articles
- College of Natural Science > Department of Chemistry > 1. Journal Articles

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