Tianjin Key Laboratory of Film Electronic and Communication Devices, Engineering Research Center of Optoelectronic Devices & Communication Technology (Ministry of Education), School of Integrated Circuit Science and Engineering, Tianjin University of Technology, Tianjin, 300384, PR China.
Tianjin Key Laboratory of Film Electronic and Communication Devices, Engineering Research Center of Optoelectronic Devices & Communication Technology (Ministry of Education), School of Integrated Circuit Science and Engineering, Tianjin University of Technology, Tianjin, 300384, PR China.
Anal Chim Acta. 2022 Jan 15;1190:339264. doi: 10.1016/j.aca.2021.339264. Epub 2021 Nov 10.
A surface acoustic wave (SAW) gas sensor with an Au/TiO/poly(3,4-ethylenedioxythiophene) (PEDOT, which is a conductive polymer with photoelectric conversion function) sensing film was constructed for the quantitative detection of water vapor and CO. The Au/TiO/PEDOT sensing film was assembled on the delayed region of the 204 MHz SAW delay line, which was used as the base device for the gas sensor. The center frequency of the sensor decreases with an increase in relative humidity (RH), and the center frequency increases with increasing CO concentration, so that not only can the two gases be identified, but quantitative analysis can also be performed. The SAW sensor has a response range of 5%-90% for RH and a response range of 500-2000 ppm for CO gas. The shifts in center frequency varied linearly with the concentrations, giving rise to the sensitivities of -0.0068 and -0.1880 kHz % for RH and ∼0.003 kHz ppm CO. The response/recovery time is 9 s/9.2 s for 700 ppm CO and 15 s/14 s for 70% RH. The experimental results show that the SAW sensor offers excellent selectivity, wide response range, rapid response, and good stability and repeatability. The mechanism of humidity and CO sensing is attributed to the hydrophilic porous structure of the Au/TiO/PEDOT sensing film, and also to the reversible variation of its viscoelasticity under illumination conditions. The sensor, combined with the communication function of its own SAW device, has several prospective applications in the monitoring of atmospheric conditions.
一种基于金/二氧化钛/聚 3,4-亚乙基二氧噻吩(PEDOT,一种具有光电转换功能的导电聚合物)传感膜的声表面波(SAW)气体传感器被构建用于水蒸气和 CO 的定量检测。Au/TiO/PEDOT 传感膜被组装在 204 MHz SAW 延迟线的延迟区上,该延迟线被用作气体传感器的基本器件。传感器的中心频率随相对湿度(RH)的增加而降低,随 CO 浓度的增加而增加,因此不仅可以识别两种气体,还可以进行定量分析。SAW 传感器对 RH 的响应范围为 5%-90%,对 CO 气体的响应范围为 500-2000 ppm。中心频率的偏移与浓度呈线性关系,RH 的灵敏度为-0.0068 和-0.1880 kHz %,CO 的灵敏度为约 0.003 kHz ppm。对于 700 ppm CO,响应/恢复时间为 9 s/9.2 s,对于 70% RH,响应/恢复时间为 15 s/14 s。实验结果表明,SAW 传感器具有优异的选择性、宽的响应范围、快速的响应以及良好的稳定性和重复性。湿度和 CO 传感的机制归因于 Au/TiO/PEDOT 传感膜的亲水多孔结构,以及在光照条件下其粘弹性的可逆变化。该传感器结合其自身 SAW 器件的通信功能,在大气条件监测方面具有广泛的应用前景。