Mesoporous Mn-substituted MnxZn1-xCo2O4 ternary spinel microspheres with enhanced electrochemical performance for supercapacitor applications

dc.contributor.authorDolla, Tarekegn Heliso
dc.contributor.authorLawal, Isiaka Ayobamidele
dc.contributor.authorKifle , Gizachew Wendimu
dc.contributor.authorJikamo , Samuel Chufamo
dc.contributor.authorMatthews , Thabo
dc.contributor.authorMaxakato , Nobanathi Wendy
dc.contributor.authorLiu , Xinying
dc.contributor.authorMathe , Mkhulu
dc.contributor.authorBilling, David Gordon
dc.contributor.authorNdungu, Patrick Gathura
dc.date.accessioned2025-07-07T13:05:19Z
dc.date.available2025-07-07T13:05:19Z
dc.date.issued2024-05-19
dc.descriptionDATA AVAILABILITY : The data that support the findings of this study are available from the corresponding author, upon reasonable request.
dc.description.abstractExtensive investigations have been carried out on spinel mixed transition metal oxide-based materials for high-performance electrochemical energy storage applications. In this study, mesoporous Mn-substituted MnxZn1−xCo2O4 (ZMC) ternary oxide microspheres (x = 0, 0.3, 0.5, 0.7, and 1) were fabricated as electrode materials for supercapacitors through a facile coprecipitation method. Electron microscopy analysis revealed the formation of microspheres comprising interconnected aggregates of nanoparticles. Furthermore, the substitution of Mn into ZnCo2O4 significantly improved the surface area of the synthesized samples. The electrochemical test results demonstrate that the ZMC3 oxide microspheres with an optimal Mn substitution exhibited enhanced performance, displaying the largest specific capacitance of 589.9 F g−1 at 1 A g−1. Additionally, the ZMC3 electrode maintained a capacitance retention of 92.1% after 1000 cycles and exhibited a significant rate capability at a current density of 10 A g−1. This improved performance can be ascribed to the synergistic effects of multiple metals resulting from Mn substitution, along with an increase in the surface area, which tailors the redox behavior of ZnCo2O4 (ZC) and facilitates charge transfer. These findings indicate that the incorporation of Mn into mixed transition metal oxides holds promise as an effective strategy for designing high-performance electrodes for energy storage applications.
dc.description.departmentChemistry
dc.description.librarianam2025
dc.description.sdgSDG-07: Affordable and clean energy
dc.description.urihttps://www.nature.com/srep/
dc.identifier.citationDolla, T.H., Lawal, I.A., Kifle, G.W. et al. 2024, 'Mesoporous Mn-substituted MnxZn1-xCo2O4 ternary spinel microspheres with enhanced electrochemical performance for supercapacitor applications', Scientific Reports, vol. 14, no. 11420, pp. 1-11. https://doi.org/10.1038/s41598-024-58822-0.
dc.identifier.issn2045-2322 (online)
dc.identifier.other10.1038/s41598-024-58822-0
dc.identifier.urihttp://hdl.handle.net/2263/103203
dc.language.isoen
dc.publisherNature Research
dc.rights© The Author(s) 2024. This article is licensed under a Creative Commons Attribution 4.0 International License.
dc.subjectTernary spinel oxides
dc.subjectSupercapacitors
dc.subjectCoprecipitation
dc.subjectMicrospheres
dc.subjectEnergy storage
dc.titleMesoporous Mn-substituted MnxZn1-xCo2O4 ternary spinel microspheres with enhanced electrochemical performance for supercapacitor applications
dc.typeArticle

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