Guo Yuan-Yuan, Zheng Xiao-Hong, Bo Liang-Bo, Gu Zi-Qi, Zhang Cheng, Liu Yu-Feng
School of Materials Science and Engineering, Shanghai Institute of Technology, Shanghai 201418, China.
School of Materials Science and Engineering, Shanghai Institute of Technology, Shanghai 201418, China.
Talanta. 2025 Apr 1;285:127415. doi: 10.1016/j.talanta.2024.127415. Epub 2024 Dec 22.
The growing modern industry has promoted the development of gas sensors for environmental monitoring and safety checks. However, the traditional chemical resistance gas sensor still has some disadvantages such as high power consumption and limited detection, mainly due to the lack of charge transfer ability of sensing materials. In this paper, an ordered UV-activated gas sensor with mesoporous ZnO/TiO nanotube composite was prepared by precisely controlling the growth of ZnO on the inner wall of TiO nanotube. Based on the synergistic effect of Knudsen diffusion, photoactivation, and in situ heterojunction amplification, the charge transfer performance under room temperature of ZnO/TiO nanotube composites is improved. Compared to TiO nanotube sensor, the ZnO/TiO sensor has a 10-fold enhanced response to NO, and the detection limit is as low as 50 ppb. Moreover, we studied the performance of ZnO/TiO sensor on NO in campus, street entrance and chemical plant, and comparing with commercial sensor, found that the detection error and detection limit of our sensor is lower, which proves the sensor has great application prospect in practical detection. This work provides a successful method for in-situ construction of ordered mesoporous materials and gives a solution for the design of advanced photoelectric gas sensors.
不断发展的现代工业推动了用于环境监测和安全检查的气体传感器的发展。然而,传统的电阻式气体传感器仍然存在一些缺点,如高功耗和检测受限,这主要是由于传感材料的电荷转移能力不足。本文通过精确控制ZnO在TiO纳米管内壁上的生长,制备了一种具有介孔ZnO/TiO纳米管复合材料的有序紫外激活气体传感器。基于克努森扩散、光激活和原位异质结放大的协同效应,ZnO/TiO纳米管复合材料在室温下的电荷转移性能得到了改善。与TiO纳米管传感器相比,ZnO/TiO传感器对NO的响应增强了10倍,检测限低至50 ppb。此外,我们研究了ZnO/TiO传感器在校园、街道入口和化工厂对NO的检测性能,并与商用传感器进行比较,发现我们的传感器的检测误差和检测限更低,这证明了该传感器在实际检测中具有广阔的应用前景。这项工作为有序介孔材料的原位构建提供了一种成功的方法,并为先进光电气体传感器的设计提供了一种解决方案。