Hydrothermal synthesis of Pt-, Fe-, and Zn-doped SnO2 nanospheres and carbon monoxide sensing properties

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Abstract

Pure and M-doped (M = Pt, Fe, and Zn) SnO2 nanospheres were successfully synthesized via a simple and facile hydrothermal method and characterized by X-ray powder diffraction, field-emission scanning electron microscopy, and energy dispersive spectroscopy. Chemical gas sensors were fabricated based on the as-synthesized nanostructures, and carbon monoxide sensing properties were systematically measured. Compared to pure, Fe-, and Zn-doped SnO2 nanospheres, the Pt-doped SnO2 nanospheres sensor exhibits higher sensitivity, lower operating temperature, more rapid response and recovery, better stability, and excellent selectivity. In addition, a theoretical study based on the first principles calculation was conducted. All results demonstrate the potential of Pt dopant for improving the gas sensing properties of SnO2-based sensors to carbon monoxide. © 2013 Weigen Chen et al.

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Chen, W., Zhou, Q., & Peng, S. (2013). Hydrothermal synthesis of Pt-, Fe-, and Zn-doped SnO2 nanospheres and carbon monoxide sensing properties. Advances in Materials Science and Engineering, 2013. https://doi.org/10.1155/2013/578460

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