Deciphering the Humidity Resistance and Oxygen-Content Independence of Conductometric Hydrogen Sulfide Sensors Based on Electrospun CeO 2 /CuO Nanotubes
Yanjie Wang, Mengqing Wang, Xinke Jiang, Xiaopeng She, Yi Chen, Yin Long, Yong Zhou
Chongqing University University of Electronic Science and Technology of China National Engineering Research Center of Electromagnetic Radiation Control Materials State Key Laboratory of Electronic Thin Films and Integrated Devices
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Limited by inherent physicochemical properties and surface-adsorption-dominated gas-sensing behavior, traditional metal oxides are susceptible to ambient humidity levels and oxygen content within test environments. To overcome this issue, we proposed one highly sensitive MEMS-type H 2 S sensor featuring electrospun cerium oxide (CeO 2 )/copper oxide (CuO) nanotubes as the sensing layer. The constituent ratio-optimized sensors (CeO 2 /CuO-5) exhibited superior H 2 S-sensing performance over pure CeO 2 counterparts, including lower operation temperature, more than two times stronger response (7.4 vs 3.1@4 ppm), and favorable selectivity. Density functional theory calculations and a series of characterization methods found that the increased oxygen vacancies and abundant CeO 2 /CuO n-p heterojunctions jointly contributed to the promotion of receptor and transducer function. In addition, a humidity-resistant and oxygen content-independent sensor performance was demonstrated. On the one hand, the self-refreshing effect of CeO 2 endowed the CeO 2 /CuO-5 sensor with 75.6% retention of response toward 4 ppm of H 2 S under 70% RH with respect to the dry case, thus showcasing an excellent humidity tolerance. On the other hand, the decent oxygen storage ability of CeO 2 favored a high response even under oxygen-lean environments. Furthermore, a patrol monitor apparatus loaded with the as-prepared sensor was designed, which showed efficient detection and alerting for on-site H 2 S leakage.
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