纳米纤维
材料科学
催化作用
贵金属
水蒸气
氢传感器
氢
退火(玻璃)
化学工程
选择性
纳米技术
金属
响应时间
纳米颗粒
湿度
铂金
纳米线
光电子学
工作温度
分解水
制氢
静电纺丝
分析化学(期刊)
标识
DOI:10.1016/j.ijhydene.2025.151613
摘要
Development of highly sensitive and selective hydrogen sensors operating at low temperatures is crucial for large-scale applications of hydrogen energy. Current sensor design strategy via modification of noble metal nanoparticles is limited by the low metal utilization. To overcome this problem, this work decorates SnO 2 nanofibers with Pt single atoms (SAs) using a two-step annealing method. The Pt-SnO 2 sensor shows high H 2 response at room temperature, but is also very susceptible to the presence of water vapor. Slightly elevating the sensor temperature significantly enhances the H 2 sensing performance. At 100 °C, a response of 998 and response time of 4.3 s for 1000 ppm H 2 as well as excellent selectivity are obtained. Moreover, the detrimental effect of water vapor is markedly depressed at this temperature. The excellent sensing properties of Pt-SnO 2 may result from a synergy of high catalytic activity and electronic modulation of Pt SAs.
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