Abstract
<title>Abstract</title> <p> Developing electrode materials that simultaneously exhibit good electrical conductivity and high electrochemical activity remains a primary concern for high-performance supercapacitors. To address this, we have synthesised a ZnO@V <sub>2</sub> O <sub>5</sub> based binary nanocomposite. The composite was synthesised through a simple solid-state method by thermally reducing the oxides, which enables effective integration of ZnO and V <sub>2</sub> O <sub>5</sub> at the nanoscale level. The morphological study showed a well-built composite structure that helps ions move through short pathways for faster transport, while the structural and phase examination verified the development of crystalline ZnO and V <sub>2</sub> O <sub>5</sub> within the composite. Galvanostatic charge–discharge measurements and cyclic voltammetry were employed to evaluate the electrochemical performance of the synthesised electrode in 2 M KOH electrolyte. The ZnO@ V <sub>2</sub> O <sub>5</sub> electrode was found to exhibit stable charge–discharge characteristics with good rate capabilities at a varying current of 2–10 mA. Also, the Cyclic voltammetry measurements revealed an overall specific capacitance of 80 F g⁻¹ at a scan rate of 10 mV s⁻¹, demonstrating effective charge-storage behaviour. The current contributions were analysed and found to be predominantly diffusion-controlled, suggesting that Faradaic ion intercalation is the principal and dominating charge-storage mechanism in the nanocomposite. Overall, the ZnO@V2O5 nanocomposite is considered a promising electrode material for supercapacitor applications. </p>