4.7 Article

Biomass-derived hierarchical porous ZnO microtubules for highly selective detection of ppb-level nitric oxide at low temperature

期刊

SENSORS AND ACTUATORS B-CHEMICAL
卷 333, 期 -, 页码 -

出版社

ELSEVIER SCIENCE SA
DOI: 10.1016/j.snb.2021.129627

关键词

ZnO; Nitric oxide; Gas sensor; Hemp fiber; Biomass template

资金

  1. International Science & Technology Cooperation Program of China [2016YFE0115100]
  2. Scientific and Technological Innovation Talents of Harbin [2016RAQXJ005]
  3. Young Innovation Talents of college in Heilongjiang Province [UNPYSCT-2016074]
  4. Key Laboratory of Functional Inorganic Material Chemistry, Ministry of Education, Heilongjiang University

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The study focused on the highly sensitive and selective detection of nitric oxide (NO) using hierarchical porous ZnO microtubules prepared with hemp fiber as a biotemplate. The ZnO-600 microtubules, calcined at 600 degrees C, demonstrated excellent gas-sensing performance towards trace NO at a low working temperature of 92 degrees C.
Highly sensitive and selective detection of nitric oxide (NO) has recently attracted much attention due to its environmental pollution and biological role. Herein, hierarchical porous ZnO microtubules were simply and massively prepared through zinc salt immersion and air calcination using hemp fiber as biotemplate. The effect of different calcination temperature on the microstructure and gas-sensing performance was investigated. The ZnO-600 microtubules calcined at 600 degrees C are assembled from the cross-linking nanoparticles with good crystallinity. Especially, the multi-pores and diverse nano-channels are in favor of the quick diffusion and adsorption of target gas, enabling ZnO-600 material to present excellent gas-sensing performance towards trace NO. At low working temperature of 92 degrees C, the sensor fabricated by ZnO-600 microtubules to NO exhibits high response (10 ppm, S = 78.54), fast response-recovery, good selectivity as well as satisfactory stability and anti-humidity. Meanwhile, this sensor represents the lowest detection limit of 5 ppb (S = 1.22) among all reported ZnO-based sensors. Moreover, the gas-sensing mechanism for ZnO-600 material is demonstrated to be surface adsorption control model.

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