Highly selective, ppb-level xylene gas detection by Sn2+-doped NiO flower-like microspheres prepared by a one-step hydrothermal method

Shaohe Lu, Xuefeng Hu, Hua Zheng, Junwen Qiu, Renbing Tian, Wenjing Quan, Xinjie Min, Peng Ji, Yewei Hu, Suishi Cheng, Wei Du, Xiaoqiang Chen, Beiliang Cui, Xiaorong Wang, Wei Zhang

Research output: Contribution to journalArticlepeer-review

22 Scopus citations

Abstract

Detecting xylene gas is an important means of avoiding human harm from gas poisoning. A precise measurement demands that the gas sensor used must have high sensitivity, high selectivity, and low working temperature. To meet these requirements, in this study, Sn2+-doped NiO flower-like microspheres (SNM) with different amounts of Sn2+ synthesized by a one-step hydrothermal process were investigated. The responses of gas sensors based on different Sn2+-doped NiO materials for various targeting gases were fully characterized. It was found that all of the synthesized materials exhibited the best gas response at a working temperature of 180 degrees, which was much lower than the previously reported working temperature range of 300–500 degrees. When exposed to 10 ppm xylene, the 8 at% Sn2+-doped NiO sensor (mol ratio) exhibited the highest response, with a value of 30 (Rg/Ra). More significantly, the detection limit of the 8 at% Sn2+-doped NiO sensor for xylene is down in the ppb level. The Sn2+-doped NiO material also exhibits excellent selectivity for other gases with long-term stability and repeatability. The significant improvement in the response to xylene can theoretically be attributed to a decrease in the intrinsic hole carrier concentration, higher amounts of adsorbed oxygen and active sites.

Original languageEnglish
Article number2958
JournalSensors
Volume19
Issue number13
DOIs
StatePublished - 1 Jul 2019

Keywords

  • Flower-like microsphere
  • Gas sensor
  • One-step hydrothermal
  • Sn-doped NiO
  • Xylene

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