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TiO2:WO3 composite humidity sensors doped with ZnO and CuO investigated by impedance spectroscopy

机译:用阻抗光谱法研究掺杂ZnO和CuO的TiO2:WO3复合湿度传感器

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摘要

For impedance-type sensors based on semiconducting metal oxides, the overall conduction mechanisms strongly influence the magnitude and the direction of the sensor signal variation. For humidity, in particular, the electronic/ionic charge-transfer reactions that take place at the semiconductor surface can be used to monitor and control it. In recent years, various mechanisms have been proposed to explain the variations of electrical response to humidity. With the study of composite materials, we expect to obtain a better sensitivity of these sensors, when compared with the ones made out of only one metal oxide. This could be due to the fact that some of the positions initially occupied by the atoms of one of the metals are now occupied by atoms of the other metal: if a single covalent/ionic adsorption is decisive in the observed changes in the material's conductivity, then the electronegativity of the occupying metal atoms may be used to regulate the sensitivity. In this paper, TiO2:WO3 composite oxide bulk sensors, using 48.92 and 51.08% (w/w) of titanium and of tungsten atoms, respectively, doped with the same proportions of cooper and zinc oxides (7%), were prepared by a conventional sintering method, and their dependence of their complex impedance spectra, measured in the range 100 Hz–10 MHz, on the relative humidity (RH), operating temperature and on the measuring frequency is shown and explained.
机译:对于基于半导体金属氧化物的阻抗型传感器,整个传导机制会强烈影响传感器信号变化的幅度和方向。特别是对于湿度,可以使用在半导体表面发生的电子/离子电荷转移反应来监视和控制它。近年来,已经提出了各种机制来解释对湿度的电响应的变化。通过对复合材料的研究,与仅由一种金属氧化物制成的传感器相比,我们期望获得更高的灵敏度。这可能是由于以下事实:一种金属中的原子最初占据的位置现在被另一种金属中的原子占据:如果单个共价/离子吸附作用决定了所观察到的材料电导率变化,那么占据金属原子的电负性可用于调节灵敏度。在本文中,通过分别用相同比例的铜和氧化锌(7%)掺杂的钛和钨原子分别使用48.92和51.08%(w / w)的TiO2:WO3复合氧化物体传感器来制备。显示并说明了传统的烧结方法,以及它们在100 Hz–10 MHz范围内测得的复阻抗谱对相对湿度(RH),工作温度和测量频率的依赖性。

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