Lontio Fomekong Roussin, Saruhan Bilge, Debliquy Marc, Lahem Driss
Higher Teacher Training College, University of Yaounde I P.O. BOX 47 Yaounde Cameroon
German Aerospace Center (DLR), Institute of Materials Research, Department of High-Temperature and Functional Coatings Cologne 51147 Germany
RSC Adv. 2022 Aug 9;12(34):22064-22069. doi: 10.1039/d2ra02360a. eCollection 2022 Aug 4.
Nitric oxide (NO) selective sensors capable of sensing in a hot-gas environment are increasingly required for monitoring combustion and processes yielding high temperature gas containing NO. This work reports the fabrication of sensors by a facile deposition of water-based ink blended commercial WO powders spray coating on sensor platforms fitted with Au-interdigitated electrodes (IDEs) and the characterization of their sensing performances under hot NO-containing air at temperatures exceeding 500 °C. After deposition and heat treatment of the sensing material on the substrate fitted with Au-IDE at 700 °C, the composition and morphology of the active material were analyzed and the presence of a single phase, fine particulates of WO, has been confirmed by XRD and SEM, respectively. The investigation of the sensing properties revealed that, contrary to the previous reports, this WO sensor can detect NO with a good sensitivity (∼22% for 200 ppm NO) and selectivity at 700 °C under humidity. The effect of relative humidity on sensing performance was also investigated. Also, under humidity values as high as 10% RH and at gas temperatures as high as 700 °C, a reasonably good sensor performance has been observed. It is likely that the improved response towards NO at moderately elevated temperatures resulted from the humidity related water molecules which are adsorbed on the surfaces of WO particles, providing high affinity hydrogen bonds between NO and OH.
能够在热气体环境中进行传感的一氧化氮(NO)选择性传感器,对于监测燃烧过程以及产生含NO高温气体的过程的需求日益增加。这项工作报道了通过在装有金叉指电极(IDE)的传感器平台上,简便地沉积混合了商用WO粉末的水基墨水进行喷涂来制造传感器,并对其在温度超过500°C的含热NO空气中的传感性能进行了表征。在700°C下将传感材料沉积并热处理在装有金IDE的基板上后,分析了活性材料的组成和形态,分别通过XRD和SEM确认了单相WO细颗粒的存在。传感特性研究表明,与先前的报道相反,这种WO传感器在700°C且有湿度的情况下,能够以良好的灵敏度(对于200 ppm NO约为22%)检测NO,并且具有选择性。还研究了相对湿度对传感性能的影响。此外,在高达10%RH的湿度值和高达700°C的气体温度下,观察到了相当良好的传感器性能。在适度升高的温度下对NO的响应改善,可能是由于与湿度相关的水分子吸附在WO颗粒表面,在NO和OH之间提供了高亲和力的氢键。