首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >WO3 nanoplates for sensitive and selective detections of both acetone and NH3 gases at different operating temperatures
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WO3 nanoplates for sensitive and selective detections of both acetone and NH3 gases at different operating temperatures

机译:WO3纳米型敏感性和选择性检测丙酮和NH3在不同的操作温度下的NH3气体

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WO3 nanoplates with abundant surface chemisorbed oxygen species were prepared by a facile hydrothermal method in the presence of polyvinylpyrrolidone (PVP). The crystal phase, morphology and surface composition of the as-prepared sample were characterized. The gas sensing properties of the WO3 nanoplates were investigated systematically and the gas sensing mechanism was discussed. The results show that effective detections towards both acetone and ammonia gases can be simultaneously realized on the WO3 nanoplates-based sensors at different operating temperatures, which is great meaningful for practical applications. At the high operating temperature of 300 degrees C, the WO3 nanoplates-based sensor displays a wide response range (1-500 ppm), fast response and recovery (3 s and 7 s), good selectivity and stability towards acetone gas. At the low operating temperature of 140 degrees C, the WO3 sensor also exhibits a good sensing performance to ammonia gas. The different sensing properties at different temperatures may be due to alteration in active oxygen species on the WO3 surfaces (adsorbed active O at 300 degrees C and less active O- at 140 degrees C) and distinct difference in bonding energies of acetone and ammonia molecules. (C) 2020 Elsevier B.V. All rights reserved.
机译:在聚乙烯吡咯烷酮(PVP)存在下,采用简单的水热方法制备了具有丰富表面化学吸附氧物种的WO3纳米板。对制备样品的晶相、形貌和表面组成进行了表征。系统地研究了WO3纳米板的气敏性能,并对其气敏机理进行了探讨。结果表明,在不同的工作温度下,基于WO3纳米板的传感器可以同时实现对丙酮和氨气的有效检测,具有重要的实际应用意义。在300℃的高温下,基于WO3纳米板的传感器显示出宽响应范围(1-500 ppm)、快速响应和恢复(3秒和7秒)、对丙酮气体的良好选择性和稳定性。在140℃的低工作温度下,WO3传感器对氨气也表现出良好的传感性能。不同温度下的不同传感特性可能是由于WO3表面活性氧物种的变化(300℃时吸附的活性O和140℃时活性较低的O)以及丙酮和氨分子键能的显著差异。(C) 2020爱思唯尔B.V.版权所有。

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