Friday, September 7, 2012

Enhanced ethanol sensing properties of Zn-doped SnO2 porous hollow microspheres

Zn-doped SnO2 porous hollow microspheres with an average diameter of ∼180 nm have been prepared by a direct precipitation method using colloidal carbon sphere as template. The XRD data disclosed that the structure of the Zn-doped SnO2 microspheres was the same as pure SnO2, while the crystallite size of Zn-doped SnO2 microspheres (10.63 nm) was smaller than SnO2 (23.2 nm). The sensing measurement showed that the response (Ra/Rg) increased near linearly with the ethanol gas concentration at the operating temperature of 240 °C. Compared with SnO2 microspheres, Zn-doped SnO2 porous hollow spheres exhibited a significant improvement for the response towards ethanol at 240 °C. The response of Zn-doped SnO2 microspheres was up to 3 when the sensor was exposed to 2 ppm C2H5OH, with the response and recovery times of 7 and 4 s, respectively. Additionally, the response of Zn-doped SnO2 sensor showed slight variation after 15 weeks storage. The results indicated that Zn-doped SnO2 microspheres are of great potential for fabricating C2H5OH sensors with high performance.


Applied Surface Science
Available online 4 September 2012

In Press, Accepted Manuscript — Note to users

Wenchuang Wang, Yongtao Tian, , Xinjian Li, Xinchang Wang, Hao He, Yurui Xu, Chuan He
Department of Physics and Laboratory of Material Physics, Zhengzhou University, Zhengzhou 450052, P. R. China


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