Abstract

The expansion of effective mass transportation and elevated electrochemical active sites are cogent strategies for designing hierarchical transition metal-based heterostructures electrodes in high-performance supercapacitors (SC). In this study, we fabricated a self-supported three-dimensional NiCoO@NC@NiCoMnSe core-shell nanowire array (NWA) on Ni foam via a two-step hydrothermal process followed by vapor phase selenification. Fabricated multivalent heterostructured core-shell NWA electrode exhibited a high areal capacity of 0.761 mA h cm−2 (2.73 C cm−2) at 2 mA cm−2 with cyclic stability of 83.1% after 5000 cycles at 30 mA cm−2. An assembled HSC device with NiCoO@NC@NiCoMnSe as a positive electrode and activated carbon (AC) as a negative electrode exhibited a high volumetric energy density of 3.87 mWh cm−3 at a volumetric power density of 20.17 mW cm−3 and further retained an energy density of 2.64 Wh cm−3 at a power density of 201.5 W cm−3. The HSC exhibited high-capacity retention of 98.2% after 10 000 cycles at 6 mA cm−2, evidence of the high durability of the rich redox-active heterostructured electrode. A thin carbon nanowall between the core and shell interface enriched the mass electron transfer, reduced the impedance, and promoted its structural durability, resulting in the heterostructure's superior electrochemical performance.

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