Revealing the electrochemical merits of coral-reef-like nickel-doped mixed metal-organic framework composites as advanced supercapacitor electrodesopen access
- Authors
- Karthickprabhu, S.; Sundararajaperumal, P.; Mahendran, M.; Vikraman, Dhanasekaran; Hussain, Sajjad; Alhebsi, Khawla Ahmed; Alhammadi, Ali Abdulkareem; Kim, Hyun-Seok; Karuppasamy, K.; Alfantazi, Akram
- Issue Date
- Aug-2025
- Publisher
- ELSEVIER
- Keywords
- MOF; Hybrid supercapacitor; Energy density; Pseudocapacitance; Energy storage
- Citation
- Journal of Power Sources, v.648, pp 1 - 11
- Pages
- 11
- Indexed
- SCIE
SCOPUS
- Journal Title
- Journal of Power Sources
- Volume
- 648
- Start Page
- 1
- End Page
- 11
- URI
- https://scholarworks.dongguk.edu/handle/sw.dongguk/58501
- DOI
- 10.1016/j.jpowsour.2025.237378
- ISSN
- 0378-7753
1873-2755
- Abstract
- Due to their porous characteristics, adjustable morphologies, better tunability, controllable crystal structures, and chemical compositions, metal-organic frameworks (MOFs) have been particularly interesting and employed in energy storage applications. Within MOFs, the organic framework enhances the double-layer capacitance, while incorporating mixed inorganic metal-organic frameworks leads to an additional pseudocapacitance, resulting in a synergistic effect that holds potential for significant advancements in energy storage technologies. In the current work, a facile wet chemical process was employed to fabricate the Ni-doped Co/Fe-MOF@Fe2O3 composite, which showed improved electrochemical properties for the resultant electrodes utilizing synergism between the Ni2+ and Co/Fe-MOF. Owing to their unique coral-reef-like morphology and improved textural behavior, the as-made Ni-doped Co/Fe-MOF@Fe2O3 offered abundant electroactive sites and shortened electron migration and electrolyte diffusion pathways. Interestingly, the prepared Ni-doped Co/Fe-MOF@Fe2O3 offered an excellent specific capacitance of 136.4 F g-1, a high-energy density of 37.1 W h kg-1, and a power density of 700 W kg-1 at 1 A g-1 in a hybrid two-electrode cell. Further, it maintained a considerable capacitance retention of 86.6 % over 5000 charge-discharge cycles. These findings open the door to employing them as promising electrode materials in hybrid supercapacitors.
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