Co−doped stannates ⁄reduced graphene composites: Effect of cobalt substitution on the electrochemical sensing of hydrogen peroxide

[Display omitted] •Co−doped zinc stannates were synthesized and tested against H2O2 oxidation.•Response to H2O2 was enhanced when cobalt is in pure phase.•A synergistic effect was obtained using reduced graphene oxide in a proportion 8:1/Co2SnO4:rGO.•Composite sensor response varied linearly with pe...

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Published inSensors and actuators. B, Chemical Vol. 250; pp. 412 - 419
Main Authors Venegas, C.J., Yedinak, E., Marco, J.F., Bollo, S., Ruiz-León, D.
Format Journal Article
LanguageEnglish
Published Lausanne Elsevier B.V 01.10.2017
Elsevier Science Ltd
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Summary:[Display omitted] •Co−doped zinc stannates were synthesized and tested against H2O2 oxidation.•Response to H2O2 was enhanced when cobalt is in pure phase.•A synergistic effect was obtained using reduced graphene oxide in a proportion 8:1/Co2SnO4:rGO.•Composite sensor response varied linearly with peroxide concentration and shows LOD of submicromolar range. Co−doped stannates, Zn2-xCoxSnO4 (0.5≤x≤1.5), were produced by ceramic synthesis starting from the ZnSnO4 phase. Morphology, structure, and composition of synthesized compounds were examined using scanning electron microscopy, X-ray diffraction analysis (XRD), and X-ray photoelectron spectroscopy (XPS). Using XPS, cobalt ions are shown to have an oxidation state of 2+, and XRD patterns showed the same crystalline structure for all Zn2-xCoxSnO4 (0.5≤x≤1.5) phases, i.e., they are isostructural. The morphology of synthesized compounds shows appreciable differences in particle sizes which range from 80nm to 500nm, depending on how the ceramic was synthesized and the cobalt concentration. Co−doped stannates ⁄reduced graphene (rGO) composites were prepared and used to modify glassy carbon electrodes (GCE). The resulting electrodes were evaluated for the amperometric determination of hydrogen peroxide. The catalytic activity of composites towards the oxidation of hydrogen peroxide was highly dependent on quantity of cobalt in the ceramic compound, and also on the quantity of rGO present in the composite. The pure cobalt stannate phase with a ratio of 8:1 (ceramic:rGO) exhibited the best catalytic activity towards hydrogen peroxide oxidation at low potentials (0.400V). A linear relationship between current and hydrogen peroxide concentration was obtained with a sensitivity of 0.43μAmM−1cm−2 and a detection limit of 0.31μM.
ISSN:0925-4005
1873-3077
DOI:10.1016/j.snb.2017.04.154