期刊
SENSORS
卷 22, 期 8, 页码 -出版社
MDPI
DOI: 10.3390/s22082934
关键词
SnO2; Pd loading; colloidal protection method; CO sensor; humidity resistance
资金
- JSPS KAKENHI [JP19H02437, JP19K15659]
- Initiative for Realizing Diversity in the Research Environment
This study focused on developing a highly sensitive carbon monoxide sensor with wide humidity resistance by exploring the Pd loading method on SnO2 nanoparticles and the thickness of the sensing layer. The results indicated that the sensor prepared using the colloidal protection method for Pd loading showed better performance, and a thinner sensing layer design could improve sensor response and stability to humidity changes.
To develop a highly sensitive carbon monoxide (CO) sensor with a wide range of humidity resistance, we focused on the Pd loading method on SnO2 nanoparticles and the thickness of the sensing layer. The Pd nanoparticles were loaded on the SnO2 surface using the surface immobilization method (SI-Pd/SnO2) and the colloidal protection method (CP-Pd/SnO2). The XPS analysis indicated that the Pd nanoparticles were a composite of PdO and Pd, regardless of the loading method. According to the evaluation of the electrical properties at 350 degrees C, the CO response in a humid atmosphere and the resistance toward humidity change using CP-Pd/SnO2 were higher than those using SI-Pd/SnO2, even though the Pd loading amount of SI-Pd/SnO2 was slightly larger than that of CP-Pd/SnO2. In addition, Pd/SnO2 prepared via the CP method with a thinner sensing layer showed a higher sensor response and greater stability to humidity changes at 300 degrees C, even though the humidity change influenced the CO response at 250 and 350 degrees C. Thus, the overall design of the surface Pd, including size, dispersity, and oxidation state, and the sensor fabrication, that is, the thickness of the sensing layer, offer a high-performance semiconductor-type CO gas sensor with a wide range of humidity resistance.
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