Abstract
Electrochemical energy storage devices such as ion batteries or super-capacitors have been developed as energy carriers for new portable technologies. The electrochemical performance of an electrochemical device depends on the physico-chemical properties of the electrode materials. In supercapacitors, the design and composition of the electrode widely influence its performance. Great efforts have been undertaken to fabricate electrode materials of supercapacitors in a quest to improve the electrochemical performance of the electrode. In this project we focus on fabrication of TMOs on carbon nanomaterials. Carbon nanomaterials and transition metal oxides offers an interesting synergistic relationship which can be utilised in electrochemical energy storage devices. The types of metal oxide incorporated into the carbon nanomaterial as well as the nano-architecture of the materials affects the electrochemical properties and thus the performance of supercapacitors. Thus, this project is focused on the development of SnO2 nanostructures supported on carbonaceous 2D materials for electrochemical energy storage devices. The physico-chemical attributes of the nanocomposite were investigated using P-XRD, FTIR, TEM, SEM, TGA and BET. The electrochemical performance of the electrodes was tested using cyclic voltammetry (CV), galvanostatic charge/discharge (GCD) and electrochemical impedance spectroscopy (EIS) in 2M KOH electrolyte in a three-electrode configuration. The hybrid electrodes of NGs/WO3, NGs/SnO2 and NGs/WO3/SnO2 exhibits a maximum specific capacitance of 14 F/g ,30 F/g and 11.2 F/g respectively...
M.Sc. (Nanoscience)