CO responses of sensors based on cerium oxide thick films prepared from clustered spherical nanoparticles

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Abstract

Various types of CO sensors based on cerium oxide (ceria) have been reported recently. It has also been reported that the response speed of CO sensors fabricated from porous ceria thick films comprising nanoparticles is extremely high. However, the response value of such sensors is not suitably high. In this study, we investigated methods of improving the response values of CO sensors based on ceria and prepared gas sensors from core-shell ceria polymer hybrid nanoparticles. These hybrid nanoparticles have been reported to have a unique structure: The core consists of a cluster of ceria crystallites several nanometers in size. We compared the characteristics of the sensors based on thick films prepared from core-shell nanoparticles with those of sensors based on thick films prepared from conventionally used precipitated nanoparticles. The sensors prepared from the core-shell nanoparticles exhibited a resistance that was ten times greater than that of the sensors prepared from the precipitated nanoparticles. The response values of the gas sensors based on the core-shell nanoparticles also was higher than that of the sensors based on the precipitated nanoparticles. Finally, improvements in sensor response were also noticed after the addition of Au nanoparticles to the thick films used to fabricate the two types of sensors. © 2013 by the authors; licensee MDPI, Basel, Switzerland.

Figures

  • Figure 1. SEM images of the cerium oxide nanoparticles and thick films used in this study. (a) the as-prepared cerium oxide nanoparticles, (b) a thick film prepared from the core-shell nanoparticles, after it had been fired at 900 °C, (c) a thick film prepared from the core-shell nanoparticles, after it had been fired at 1,000 °C, and (d) a thick film prepared from the precipitated nanoparticles, after it had been fired at 950 °C.
  • Figure 2. Change in the resistance of the sensors based on cerium oxide thick films (a) prepared from the core-shell nanoparticles and fired at 900 °C (b) prepared from the precipitated nanoparticles and fired at 950 °C. The sensors were exposed interchangeably to both air containing CO and CO-free air, with the operating temperature being 450 °C.
  • Table 1. Response and recovery times of the sensors.
  • Figure 3. Relationship between the CO concentration in the air sample being tested and the responses of the two types of sensors at 450 °C. core-shell: sensor based on a thick film prepared from the core-shell nanoparticles and fired at 900 °C; precipitated: sensor based on a thick film prepared from the precipitated nanoparticles and fired at 950 °C.
  • Figure 4. Relationship between the CO concentration in the tested air sample and the responses of various sensors at 450 °C. Au + core-shell: sensor based on a thick film formed from the core-shell nanoparticles. The thick film was fired at 1,000 °C and Au nanoparticles subsequently incorporated into it; core-shell: sensor based on a thick film prepared from the core-shell nanoparticles and fired at 1,000 °C; Au + precipitated: sensor based on a thick film formed from the precipitated nanoparticles. The thick film was fired at 950 °C and Au nanoparticles subsequently incorporated into it; and precipitated: sensor based on a thick film prepared from the precipitated nanoparticles and fired at 950 °C.
  • Table 2. BET specific surface areas of the cerium oxide powders obtained after heating the core-shell and the precipitated nanoparticles.

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CITATION STYLE

APA

Izu, N., Matsubara, I., Itoh, T., Akamatsu, T., & Shin, W. (2013). CO responses of sensors based on cerium oxide thick films prepared from clustered spherical nanoparticles. Sensors (Switzerland), 13(3), 3252–3261. https://doi.org/10.3390/s130303252

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