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Synthesis Characterization and Enhanced Sensing Properties of a NiO/ZnO p–n Junctions Sensor for the SF6 Decomposition Byproducts SO2 SO2F2 and SOF2

机译:用于SF6分解副产物SO2SO2F2和SOF2的NiO / ZnO p-n结传感器的合成表征和增强的传感特性

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摘要

The detection of partial discharge and analysis of the composition and content of sulfur hexafluoride SF6 gas components are important to evaluate the operating state and insulation level of gas-insulated switchgear (GIS) equipment. This paper reported a novel sensing material made of pure ZnO and NiO-decorated ZnO nanoflowers which were synthesized by a facile and environment friendly hydrothermal process for the detection of SF6 decomposition byproducts. X-ray diffraction (XRD), field emission scanning electron microscopy (FESEM), transmission electron microscopy (TEM), high resolution transmission electron microscopy (HRTEM), energy-dispersive X-ray spectroscopy (EDS) and X-ray photoelectron spectroscopy (XPS) were used to characterize the structural and morphological properties of the prepared gas-sensitive materials. Planar-type chemical gas sensors were fabricated and their gas sensing performances toward the SF6 decomposition byproducts SO2, SO2F2, and SOF2 were systemically investigated. Interestingly, the sensing behaviors of the fabricated ZnO nanoflowers-based sensor to SO2, SO2F2, and SOF2 gases can be obviously enhanced in terms of lower optimal operating temperature, higher gas response and shorter response-recovery time by introducing NiO. Finally, a possible gas sensing mechanism for the formation of the p–n junctions between NiO and ZnO is proposed to explain the enhanced gas response. All results demonstrate a promising approach to fabricate high-performance gas sensors to detect SF6 decomposition byproducts.
机译:检测局部放电以及分析六氟化硫SF6气体成分的组成和含量对于评估气体绝缘开关设备(GIS)设备的工作状态和绝缘水平非常重要。本文报道了一种新型的传感材料,该材料由纯ZnO和装饰有NiO的ZnO纳米花制成,它们是通过一种简便且环保的水热工艺合成的,用于检测SF6分解副产物。 X射线衍射(XRD),场发射扫描电子显微镜(FESEM),透射电子显微镜(TEM),高分辨率透射电子显微镜(HRTEM),能量色散X射线光谱(EDS)和X射线光电子光谱( XPS)被用来表征所制备的气敏材料的结构和形态特性。制备了平面型化学气体传感器,并系统地研究了它们对SF6分解副产物SO2,SO2F2和SOF2的气体传感性能。有趣的是,通过引入NiO,可以在较低的最佳工作温度,较高的气体响应和较短的响应恢复时间方面显着增强所制造的ZnO纳米花基传感器对SO2,SO2F2和SOF2气体的传感行为。最后,提出了一种可能的气体感应机制,用于形成NiO和ZnO之间的p–n结,以解释增强的气体响应。所有结果证明了一种制造高性能气体传感器以检测SF6分解副产物的有前途的方法。

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