1 São Paulo State University, Department of Analytical Chemistry, UNESP, Araraquara, SP, Brazil.
2 Ulm University, Institute of Analytical and Bioanalytical Chemistry, Ulm, Germany.
Appl Spectrosc. 2019 Jan;73(1):98-103. doi: 10.1177/0003702818801371. Epub 2018 Sep 28.
Nitrogen-based fertilizers have been used in modern agricultural activities resulting in a relevant emission source of nitrogen gases into the atmosphere, mainly nitric oxide (NO), nitrogen dioxide (NO), and nitrous oxide (NO). Furthermore, the burning of fossil fuels is the most significant emission source of NO (i.e., NO + NO), being the controlling of vehicle exhaust system an essential task. Those compounds can be related to air pollution effects either directly, by emitting a powerful greenhouse gas (i.e., NO), or indirectly, by formation of nitric acid (HNO) or ammonium nitrate (NHNO) from NO or NO, responsible for the increase of acid rain and particulate material into the atmosphere. This context requires appropriate sensor technology facilitating in situ and simultaneous monitoring of nitrogen emitted gases, with easiness of operation and compact dimensions. In this communication, we describe an innovative mid-infrared chemical sensor platform for the in situ, real-time, and simultaneous quantification of gaseous NO, NO, and NO by combining a compact Fourier transform infrared (FT-IR) spectrometer with the so-called substrate-integrated hollow waveguide (iHWG) as a miniaturized gas cell. The optical platform enabled limits of detection of 10, 1, and 0.5 ppm of NO, NO, and NO, respectively. The linear concentration range evaluated in this study is suitable for the application of the sensing platform in vehicle exhaust air samples. Given the high adaptability of the developed infrared sensing device toward preconcentration or ultraviolet conversion modules and also considering the potential for combining tunable interband cascade lasers (ICLs) in lieu of the FT-IR spectrometer, we anticipate the application of the sensing platform for in situ determination of nitrogen gases in a wide range of scenarios.
氮肥在现代农业活动中被广泛应用,导致氮气体排放到大气中成为一个重要的来源,主要包括一氧化氮(NO)、二氧化氮(NO)和氧化亚氮(NO)。此外,化石燃料的燃烧是 NO 的最重要排放源(即 NO+NO),控制车辆排气系统是一项至关重要的任务。这些化合物可能会直接或间接对空气污染产生影响,直接通过排放一种强大的温室气体(即 NO),或间接通过 NO 或 NO 形成硝酸(HNO)或硝酸铵(NHNO),从而导致酸雨和大气中颗粒物质的增加。在这种情况下,需要适当的传感器技术来促进氮排放气体的现场和实时同时监测,具有操作简便和尺寸紧凑的特点。在本通讯中,我们描述了一种创新的中红外化学传感器平台,用于通过将紧凑型傅里叶变换红外(FT-IR)光谱仪与所谓的基底集成中空波导(iHWG)相结合,实现现场、实时和同时定量测量气态 NO、NO 和 NO,从而实现小型化气体池。该光学平台使 NO、NO 和 NO 的检测限分别达到 10、1 和 0.5ppm。本研究评估的线性浓度范围适用于该传感平台在车辆排气样品中的应用。鉴于所开发的红外传感设备对预浓缩或紫外线转换模块的高度适应性,以及考虑到在 FT-IR 光谱仪中替代可调谐能带间级联激光器(ICLs)的潜力,我们预计该传感平台将在各种场景中用于现场确定氮气体。