Majumder Deblina, Roy Somenath
Sensor and Actuator Division, CSIR-Central Glass and Ceramic Research Institute, 196 Raja S.C. Mullick Road, Kolkata 700032, India.
ACS Omega. 2018 Apr 24;3(4):4433-4440. doi: 10.1021/acsomega.8b00146. eCollection 2018 Apr 30.
Mesoporous CeO nanospheres with appreciably high surface area are prepared using reversed micelles by a water-in-oil microemulsion method. The structural morphology and semiconducting properties of the nanoparticles are thoroughly investigated using X-ray diffraction, field effect scanning electron microscopy, transmission electron microscopy, and UV-visible spectroscopic techniques. Even after high-temperature calcination, the morphological retention of the material is apparent by electron microscopy. The deployment of undoped CeO nanospheres for the detection of low-ppm CO yields superior performances in terms of sensitivity, response-recovery times, and selectivity compared to those of other sensors of the same genre. These CO sensors exhibit ∼ 52% sensitivity with a response time of only 13 s. The sensor parameters are analyzed as a function of both temperature and gas concentration. In addition to that on the cost-effective and scalable synthesis of CeO nanospheres, this article also reports on the fabrication of packaged CO sensors, which can be potentially utilized for industrial and environmental monitoring purposes.
采用油包水微乳液法,通过反相胶束制备了具有相当高比表面积的介孔CeO纳米球。利用X射线衍射、场效应扫描电子显微镜、透射电子显微镜和紫外可见光谱技术,对纳米粒子的结构形态和半导体性质进行了深入研究。即使经过高温煅烧,通过电子显微镜仍可明显观察到材料的形态保留。与同类其他传感器相比,未掺杂的CeO纳米球用于检测低ppm浓度的CO时,在灵敏度、响应恢复时间和选择性方面表现出优异的性能。这些CO传感器的灵敏度约为52%,响应时间仅为13秒。分析了传感器参数与温度和气体浓度的函数关系。除了关于CeO纳米球的经济高效且可扩展的合成方法外,本文还报道了封装式CO传感器的制造,该传感器可潜在地用于工业和环境监测目的。