Shooshtari Mostafa, Salehi Alireza, Vollebregt Sten
Department of Electrical Engineering, K N Toosi University of Technology, Tehran, Iran.
Department of Microelectronics, Delft University of Technology, Delft, The Netherland.
Nanotechnology. 2021 May 17;32(32). doi: 10.1088/1361-6528/abfd54.
In this paper, we study the influence of two key factors, temperature, and humidity, on gas sensors based on titanium dioxide nanowires synthesized at 4 different temperatures and with different morphology. The samples' structure are investigated using SEM, XRD and FTIR analysis. The effects of humidity and temperature are studied by measuring the resistance and gas response when exposed to ethanol. At room temperature, we observed a 15% sensitivity response to 100 ppm of ethanol vapor and by increasing the operating temperature up to 180 °C, the response is enhanced by two orders of magnitude. The best operating temperature for the highest gas response is found to be around 180 °C. Also, it was observed that every nanowire morphology has its own optimum operating temperature. The resistance of sensors is increased at higher Relative Humidity (RH). Besides, the response to ethanol vapor experiences a gradual increase when the RH rises from 10% to 60%. On the other hand, from 60% to 90% RH the gas response decreases gradually due to different mechanisms of interaction of the TiOwith HO and ethanol molecules.
在本文中,我们研究了温度和湿度这两个关键因素对基于在4种不同温度下合成的具有不同形态的二氧化钛纳米线的气体传感器的影响。使用扫描电子显微镜(SEM)、X射线衍射(XRD)和傅里叶变换红外光谱(FTIR)分析对样品结构进行了研究。通过测量暴露于乙醇时的电阻和气体响应来研究湿度和温度的影响。在室温下,我们观察到对100 ppm乙醇蒸汽的灵敏度响应为15%,并且通过将工作温度提高到180°C,响应提高了两个数量级。发现最高气体响应的最佳工作温度约为180°C。此外,观察到每种纳米线形态都有其自己的最佳工作温度。在较高的相对湿度(RH)下,传感器的电阻会增加。此外,当RH从10%升至60%时,对乙醇蒸汽的响应会逐渐增加。另一方面,从60%到90%RH,由于TiO与H₂O和乙醇分子相互作用的不同机制,气体响应会逐渐降低。