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Studies on Sensing Properties and Mechanism of CuO Nanoparticles to H2S Gas

机译:CuO纳米颗粒对H2S气体的传感特性及机理研究

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摘要

In this work, the high crystalline copper oxide (CuO) nanoparticles were fabricated by a hydrothermal method, and their structural properties were characterized by transmission electron microscopy (TEM), X-ray diffraction (XRD), and X-ray photoelectron spectroscopy (XPS). The sensing results show that CuO nanoparticles exhibit enhanced sensitivity and good selectivity for hydrogen sulfide (H S) gas at a low temperature. There are two working mechanisms involved in the H S sensing based on CuO nanoparticle sensors. They are the H S oxidation mechanism and the copper sulphide (CuS) formation mechanism, respectively. The two sensing mechanisms collectively enhance the sensor’s response in the H S sensing process. The Cu–S bonding is stable and cannot break spontaneously at a low temperature. Therefore, the CuS formation inhibits the sensor’s recovery process. Such inhibition gradually enhances as the gas concentration increases from 0.2 ppm to 5 ppm, and it becomes weaker as the operating temperature rises from 40 °C to 250 °C. The XPS results confirmed the CuS formation phenomenon, and the micro Raman spectra demonstrated that the formation of CuS bonding and its decomposition can be effectively triggered by a thermal effect. Gas-sensing mechanism analysis supplied abundant cognition for the H S sensing phenomena based on CuO materials.
机译:在这项工作中,通过水热法制备了高结晶氧化铜(CuO)纳米颗粒,并通过透射电子显微镜(TEM),X射线衍射(XRD)和X射线光电子能谱(XPS)表征了其结构性质。 )。感测结果表明,CuO纳米颗粒在低温下对硫化氢(H S)气体具有更高的灵敏度和良好的选择性。基于CuO纳米粒子传感器的H S感测涉及两种工作机制。它们分别是HS氧化机理和硫化铜(CuS)形成机理。这两种传感机制共同增强了H S传感过程中传感器的响应。 Cu-S键稳定,在低温下不会自发破裂。因此,CuS的形成会抑制传感器的恢复过程。随着气体浓度从0.2 ppm增加到5 ppm,这种抑制作用逐渐增强,随着工作温度从40°C增加到250°C,这种抑制作用变得越来越弱。 XPS结果证实了CuS的形成现象,微观拉曼光谱表明CuS键的形成及其分解可以通过热效应有效触发。气体传感机理分析为基于CuO材料的Hs传感现象提供了丰富的认识。

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