期刊文献+

Optimization of Gas Sensing Performance of Nanocrystalline SnO_2 Thin Films Synthesized by Magnetron Sputtering 被引量:1

Optimization of Gas Sensing Performance of Nanocrystalline SnO_2 Thin Films Synthesized by Magnetron Sputtering
下载PDF
导出
摘要 Tin oxide (SnO2) is one of the most promising transparent conducting oxide materials, which is widely used in thin film gas sensors. We investigate the dependence of the deposition time on structural, morphologicaJ and hydrogen gas sensing properties of SnO2 thin films synthesized by dc magnetron sputtering. The deposited samples are characterized by XRD, SEM, AFM, surface area measurements and surface profiler. Also the H2 gas sensing properties of SnO2 deposited samples are performed against a wide range of operating temperature. The XRD analysis demonstrates that the degree of crystallinity of the deposited SnO2 films strongly depends on the deposition time. SEM and AFM analyses reveal that the size of nanoparticles or agglomerates, and both average and rms surface roughness is enhanced with the increasing deposition time. Also gas sensors based on these SnO2 nanolayers show an acceptable response to hydrogen at various operating temperatures. Tin oxide (SnO2) is one of the most promising transparent conducting oxide materials, which is widely used in thin film gas sensors. We investigate the dependence of the deposition time on structural, morphologicaJ and hydrogen gas sensing properties of SnO2 thin films synthesized by dc magnetron sputtering. The deposited samples are characterized by XRD, SEM, AFM, surface area measurements and surface profiler. Also the H2 gas sensing properties of SnO2 deposited samples are performed against a wide range of operating temperature. The XRD analysis demonstrates that the degree of crystallinity of the deposited SnO2 films strongly depends on the deposition time. SEM and AFM analyses reveal that the size of nanoparticles or agglomerates, and both average and rms surface roughness is enhanced with the increasing deposition time. Also gas sensors based on these SnO2 nanolayers show an acceptable response to hydrogen at various operating temperatures.
出处 《Chinese Physics Letters》 SCIE CAS CSCD 2016年第6期99-103,共5页 中国物理快报(英文版)
基金 Supported by the Bandar Abbas Branch of the Islamic Azad University
  • 相关文献

参考文献23

  • 1Park S et al 2012 ACS Appl. Mater. Interfaces 4 3650.
  • 2Chen X, Wong C K Y, Yuan C A and Zhang G 2013 Sens. Actuators B 177 178.
  • 3Wang B, Zhu L F, Yang Y H, Xu N S and Yang C W 2000 J. Phys. Chem. 112 6643.
  • 4Kimura Y, Kimura S, Kojima R, Bitoh M, Abe M and Ni- wano M 2013 Sens. Actuators B 177 1156.
  • 5Tong P V, Hoa N D, Quang V V, Duy N V and Hieu N V 2013 Seas. Actuators B 183 372.
  • 6Wongchoosuk C, Wisitsoraat A, Phokharatkul D, Hor- prathum M, Tuantranont A and Kerdcharoen T 2013 Sens. Actuators B 181 388.
  • 7Wang L, Kang Y, Liu X, Zhang S and Huang W 2012 Sens. Actuators B 162 237.
  • 8Ayeshamariam A, Kashif M, Bououdina M, Hashim U, Jay- achandran M and Ali M E 2014 Ceram. Int. 40 1321.
  • 9Xiang C, She Z, Zou Y, Cheng J, Chu H, Qiu S, Zhang H, Sun L and Xu F 2014 Ceram. Int. 40 16343.
  • 10Zeng W, He Q, Pan K and Wang Y 2013 Physica E 54 313.

引证文献1

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部