Electrochemical studies of Ni(OH)2, NiO, and Ni3S2 nanostructures on Ni-foam toward binder-free positive electrode for hybrid supercapacitor applicationopen access
- Authors
- Maile, Nagesh C.; Ghani, Ahsan Abdul; Shinde, Surendra K.; Kim, Bolam; Lim, Youngsu; Tahir, Khurram; Devarayapalli, Kamakshaiah Charyulu; Mohite, Santosh V.; Jang, Jiseon; Lee, Dae Sung
- Issue Date
- Dec-2022
- Publisher
- John Wiley & Sons Inc.
- Keywords
- binder-free; hybrid supercapacitor; Ni(OH)(2); Ni3S2; NiO
- Citation
- International Journal of Energy Research, v.46, no.15, pp 22501 - 22515
- Pages
- 15
- Indexed
- SCIE
SCOPUS
- Journal Title
- International Journal of Energy Research
- Volume
- 46
- Number
- 15
- Start Page
- 22501
- End Page
- 22515
- URI
- https://scholarworks.dongguk.edu/handle/sw.dongguk/2180
- DOI
- 10.1002/er.8553
- ISSN
- 0363-907X
1099-114X
- Abstract
- Self-supported, porous, and binder-free hexagonal nanosheets of Ni(OH)(2) [HS-Ni(OH)(2)], hexagonal nanosheets of NiO [HS-NiO], and hexagonal-nanosheet/nanoporous-grain like Ni3S2 [HSNG-Ni3S2] were successfully grown on 3D Ni-foam at different stages of hydrothermal synthesis using Ni-foam as a precursor source for the cost-effective fabrication of positive electrode for hybrid supercapacitor (SC) application. Comparative analysis revealed that the HSNG-Ni3S2 exhibited a maximum areal capacitance of 1286 mF cm(-2) at 0.5 mA cm(-2), far more than the 217 mF cm(-2) of HS-NiO and 129 mF cm(-2) of HS-Ni(OH)(2), with remarkable capacitance retention of 97% for 5000 charge-discharge cycles. The porous binder-free electrode design, improved interfacial conductivity, and easy ionic diffusion are responsible for the remarkable performance of HSNG-Ni3S2. Furthermore, the aqueous alkaline hybrid SC assembled by HSNG-Ni3S2 as a positive electrode with activated carbon as a negative electrode delivered a maximum areal capacitance of 225.4 mF cm(-2) at 1 mA cm(-2) with remarkable stability up to 92.2% for 5000 charge-discharge cycles. This study presents insightful electrochemical properties of binder-free designed Ni-based Ni(OH)(2), NiO, and Ni3S2 electrodes for low-cost and environmental-friendly energy storage systems.
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Collections - College of Life Science and Biotechnology > Department of Biological and Environmental Science > 1. Journal Articles

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