Bimetallic MOF-derived CuO-Co3O4 heterostructures as high-capacity electrodes for asymmetric supercapacitors

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dc.contributor.author Kumar, Arjit
dc.contributor.author Satpathy, Biraj Kanta
dc.contributor.author Goyal, Prateek
dc.contributor.author Upadhyay, Rajnikant
dc.contributor.author Kiapi, Mohammad Reza Alizadeh
dc.contributor.author Jasuja, Kabeer
dc.contributor.author Menon, Dhruv
dc.contributor.author Misra, Superb K.
dc.coverage.spatial United States of America
dc.date.accessioned 2025-07-25T11:43:48Z
dc.date.available 2025-07-25T11:43:48Z
dc.date.issued 2025-09
dc.identifier.citation Kumar, Arjit; Satpathy, Biraj Kanta; Goyal, Prateek; Upadhyay, Rajnikant; Kiapi, Mohammad Reza Alizadeh; Jasuja, Kabeer; Menon, Dhruv and Misra, Superb K., "Bimetallic MOF-derived CuO-Co3O4 heterostructures as high-capacity electrodes for asymmetric supercapacitors", Chemical Engineering Journal, DOI: 10.1016/j.cej.2025.165685, vol. 520, Sep. 2025.
dc.identifier.issn 1385-8947
dc.identifier.issn 1873-3212
dc.identifier.uri https://doi.org/10.1016/j.cej.2025.165685
dc.identifier.uri https://repository.iitgn.ac.in/handle/123456789/11656
dc.description.abstract Metal-organic frameworks (MOFs) offer unique opportunities for designing high-performance supercapacitor electrodes through controlled structural evolution. However, achieving optimal balance between conductivity, redox activity, and stability in MOF-derived oxides remains challenging. Here, we report a controlled room-temperature synthesis strategy for bimetallic Cu-Co MOFs with varying morphologies and tuneable Cu2+/Co2+ ratios, which, upon annealing, resulted in mixed-phase CuO-Co3O4 heterostructures with oxygen vacancy density directly correlated to cobalt content. The CuO-Co₃O₄ (1:1) hybrid exhibits exceptional specific capacitance (1564.4 F g−1 at 1 A g−1), outperforming its parent MOF (333.3 F g−1) and monometallic oxides by >300 %, attributable to synergistic Cu+/Cu2+ and Co2+/Co3+ redox couples and vacancy-enhanced ion diffusion. The electrochemical and structural characteristics were also verified by spin-polarised density functional theory (DFT) calculations. An asymmetric supercapacitor pairing of this hybrid with activated carbon achieves an extended 1.5 V window, delivering 48.7 Wh kg−1 energy density at a power density of 750 W kg−1 while retaining 91.2 % capacitance over 10,000 cycles – surpassing other reported MOF-derived oxides. The CuO-Co3O4 electrodes lead to a combined synergistic effect due to the modified electronic state, higher active sites and improved redox activity, producing high supercapacitive performances. Our work demonstrates how metal ratio tuning in bimetallic MOF precursors can engineer defect-rich oxides for durable high-energy storage.
dc.description.statementofresponsibility by Arjit Kumar, Biraj K. Satpathy, Prateek Goyal, Rajnikant Upadhyay, Mohammad Reza Alizadeh Kiapi, Kabeer Jasuja, Dhruv Menon and Superb K. Misra
dc.format.extent vol. 520
dc.language.iso en_US
dc.publisher Elsevier
dc.subject Metal-organic frameworks
dc.subject Nanomaterials
dc.subject Metal oxides
dc.subject Supercapacitors
dc.subject Energy storage
dc.title Bimetallic MOF-derived CuO-Co3O4 heterostructures as high-capacity electrodes for asymmetric supercapacitors
dc.type Article
dc.relation.journal Chemical Engineering Journal


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