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基于低温运行的电解剥离石墨烯/火焰喷涂法制备的SnO₂纳米颗粒复合材料的欧姆金属-半导体界面的超灵敏NO₂传感器。

Ultrasensitive NO2 Sensor Based on Ohmic Metal-Semiconductor Interfaces of Electrolytically Exfoliated Graphene/Flame-Spray-Made SnO2 Nanoparticles Composite Operating at Low Temperatures.

作者信息

Tammanoon Nantikan, Wisitsoraat Anurat, Sriprachuabwong Chakrit, Phokharatkul Ditsayut, Tuantranont Adisorn, Phanichphant Sukon, Liewhiran Chaikarn

机构信息

Department of Physics and Materials Science, Faculty of Science, Chiang Mai University , Chiang Mai 50202, Thailand.

Nanoelectronics and MEMS Laboratory, National Electronics and Computer Technology Center, National Science and Technology Development Agency , Klong Luang, Pathumthani 12120, Thailand.

出版信息

ACS Appl Mater Interfaces. 2015 Nov 4;7(43):24338-52. doi: 10.1021/acsami.5b09067. Epub 2015 Oct 27.

Abstract

In this work, flame-spray-made undoped SnO2 nanoparticles were loaded with 0.1-5 wt % electrolytically exfoliated graphene and systematically studied for NO2 sensing at low working temperatures. Characterizations by X-ray diffraction, transmission/scanning electron microscopy, and Raman and X-ray photoelectron spectroscopy indicated that high-quality multilayer graphene sheets with low oxygen content were widely distributed within spheriodal nanoparticles having polycrystalline tetragonal SnO2 phase. The 10-20 μm thick sensing films fabricated by spin coating on Au/Al2O3 substrates were tested toward NO2 at operating temperatures ranging from 25 to 350 °C in dry air. Gas-sensing results showed that the optimal graphene loading level of 0.5 wt % provided an ultrahigh response of 26,342 toward 5 ppm of NO2 with a short response time of 13 s and good recovery stabilization at a low optimal operating temperature of 150 °C. In addition, the optimal sensor also displayed high sensor response and relatively short response time of 171 and 7 min toward 5 ppm of NO2 at room temperature (25 °C). Furthermore, the sensors displayed very high NO2 selectivity against H2S, NH3, C2H5OH, H2, and H2O. Detailed mechanisms for the drastic NO2 response enhancement by graphene were proposed on the basis of the formation of graphene-undoped SnO2 ohmic metal-semiconductor junctions and accessible interfaces of graphene-SnO2 nanoparticles. Therefore, the electrolytically exfoliated graphene-loaded FSP-made SnO2 sensor is a highly promising candidate for fast, sensitive, and selective detection of NO2 at low operating temperatures.

摘要

在这项工作中,将火焰喷雾法制备的未掺杂SnO₂纳米颗粒负载0.1 - 5 wt%的电解剥离石墨烯,并对其在低工作温度下的NO₂传感性能进行了系统研究。通过X射线衍射、透射/扫描电子显微镜、拉曼光谱和X射线光电子能谱表征表明,低氧含量的高质量多层石墨烯片广泛分布在具有多晶四方SnO₂相的球形纳米颗粒中。通过旋涂在Au/Al₂O₃衬底上制备的10 - 20μm厚的传感薄膜在25至350°C的干燥空气中对NO₂进行了测试。气敏结果表明,0.5 wt%的最佳石墨烯负载量对5 ppm的NO₂提供了26342的超高响应,响应时间短至13 s,在150°C的低最佳工作温度下具有良好的恢复稳定性。此外,该最佳传感器在室温(25°C)下对5 ppm的NO₂也表现出高传感器响应和171及7 min的相对短响应时间。此外,该传感器对H₂S、NH₃、C₂H₅OH、H₂和H₂O表现出非常高的NO₂选择性。基于石墨烯 - 未掺杂SnO₂欧姆金属 - 半导体结的形成以及石墨烯 - SnO₂纳米颗粒的可及界面,提出了石墨烯显著增强NO₂响应的详细机制。因此,电解剥离石墨烯负载的火焰喷雾法制备的SnO₂传感器是在低工作温度下快速、灵敏和选择性检测NO₂的极具潜力的候选者。

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