Gold nanoparticles supported on zirconium, tin and ruthenium oxides for reagentless electrochemical sensing of hydrogen peroxide†
Abstract
We demonstrate a simple method for the fabrication of metal oxide (M-Ox) supported gold nanoparticle (AuNP) composite films (M-Ox–AuNP) by mechanical and electrochemical methods on solid surface for reagentless electrochemical sensing of hydrogen peroxide (H2O2). The method involves anchoring the M-Ox onto the solid surface using nafion binder followed by electrodeposition of AuNPs to form M-Ox–AuNP composites. The M-Ox used are ruthenium (RuO2), tin (SnO2) and zirconium (ZrO2) oxides. Studies reveal that the M-Ox–AuNP mimics the enzyme kinetic behaviour and Michaelis–Menten (MM) kinetic constants, KM and Kc, are evaluated. The KM values observed for the ZrO2–AuNP, RuO2–AuNP and SnO2–AuNP composites are 1000, 10.1 and 2.3 mM, respectively. The highest KM of the ZrO2–AuNP is correlated with its largest band gap energy change (1.1 eV) and highest electrochemical activities. These are further supported by the increased crystalline nature and ligand-to-metal charge transfer processes confirmed by UV-visible (UV-vis), Field Emission Scanning Electron Microscopy (FESEM), Fourier Transform Infrared (FTIR) and X-ray diffraction (XRD) techniques. These M-Ox–AuNP composites are applied for H2O2 sensing in commercial antiseptic and milk samples.