材料科学
静电纺丝
硫化氢
湿度
化学工程
纳米技术
复合材料
聚合物
热力学
物理
工程类
冶金
硫黄
作者
Yanjie Wang,Mengqing Wang,Xinke Jiang,Xiaopeng She,Yi Chen,Yin Long,Yong Zhou
出处
期刊:ACS Sensors
[American Chemical Society]
日期:2025-06-17
卷期号:10 (6): 4262-4275
被引量:16
标识
DOI:10.1021/acssensors.5c00478
摘要
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 H2S sensor featuring electrospun cerium oxide (CeO2)/copper oxide (CuO) nanotubes as the sensing layer. The constituent ratio-optimized sensors (CeO2/CuO-5) exhibited superior H2S-sensing performance over pure CeO2 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 CeO2/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 CeO2 endowed the CeO2/CuO-5 sensor with 75.6% retention of response toward 4 ppm of H2S 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 CeO2 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 H2S leakage.
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