Micromachined thin film solid state electrochemical CO2, NO2 and SO2 gas sensors

被引:71
作者
Currie, JF
Essalik, A
Marusic, JC
机构
[1] Georgetown Univ, Dept Phys, Georgetown Adv Elect Lab, Washington, DC 20057 USA
[2] Ecole Polytech, Dept Engn Phys, Lab Integrat Sensors & Actuators, Montreal, PQ H3C 3A7, Canada
关键词
thin film; electrochemical; gas sensor; material characterization; performance; air pollution;
D O I
10.1016/S0925-4005(99)00227-0
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
Among the many physical and chemical strategies used to make air pollution gas sensors for COx, NOx, SOx monitoring, those employing electrochemical detection means offer the highest selectivity, long lifetimes, low drift and low costs of manufacture. Targeting the three gases CO2, NO2 and SO2, new solid-electrolyte-based, selective potentiometric gas sensors were fabricated in both bulk and thin film versions. For all six bulk and thin film sensors, the EMF responses were related to the analyzed target gas pressure by the Nernst law. For each of the target gases CO2, NO2 and SO2, our thin film micro-sensor exhibits excellent gas-sensing sensitivity, response time, selectivity and recovery compared to the bulk sensor. The carbon dioxide micro-sensor characteristics obtained at 250 degrees C were 45 +/- 3 mV/decade for the sensitivity, 10 to 30 s for the response time and 60 s for recovery time. The nitrogen dioxide micro-sensor characteristics obtained at 200 degrees C were 48 +/- 3 mV/decade for the sensitivity, 2 to 10 s for the response time and 10 s for recovery time. The sulfur dioxide micro-sensor characteristics obtained at 250 degrees C were 50 +/- 3 mV/decade for the sensitivity, 1 to 2 s for the response time and 5 s for recovery time. In comparison, the bulk sensor CO2 characteristics obtained at 250 degrees C were 50 +/- 3 mV/decade for the sensitivity, 60 to 300 s for the response time and 900 s for recovery time. To verify selectivity in air samples, the sensitivity of each gas detector with respect to the gases CO2, NO2 and SO2, oxygen, CO, and humidity were evaluated. The CO2 sensor was insensitive to the later three gases, but there was a measurable EMF drift produced for NO2 at concentrations above 10 ppm and for SO2 at concentrations above 80 ppm. Similarly, the NO2 sensor operating at 200 degrees C was insensitive to all other gases except for SO2 at concentrations above 80 ppm. Finally, the SO2 sensor operating at 250 degrees C was insensitive to all other. We optimized our processing to obtain a dense strongly adhering deposited solid electrolyte thin film. XPS and XRD studies show that the chemical composition and structure of the deposited solid electrolyte thin-film and targets for RF magnetron sputtering were the same to within experimental error. For brevity, complete results are presented only for the CO2 micro-sensor. The results for the other two gas micro-sensors are essentially the same and will be published elsewhere. (C) 1999 Elsevier Science S.A. All rights reserved.
引用
收藏
页码:235 / 241
页数:7
相关论文
共 50 条
  • [21] Efficacious means for inhibiting the deactivation of K2CO3/AC for low-concentration CO2 removal in the presence of SO2 and NO2
    Guo, Yafei
    Li, Changhai
    Lu, Shouxiang
    Zhao, Chuanwen
    [J]. CHEMICAL ENGINEERING JOURNAL, 2017, 308 : 516 - 526
  • [22] Transition metal-doped ZrS2 monolayer as potential gas sensor for CO2, SO2, and NO2: density functional theory and non-equilibrium Green's functions' analysis
    Zhu, Min-Qi
    Wang, Xue-Feng
    Vasilopoulos, P.
    [J]. JOURNAL OF PHYSICS D-APPLIED PHYSICS, 2025, 58 (13)
  • [23] Vacuum-Deposited Poly(o-phenylenediamine)/WO3·nH2O Nanocomposite Thin Film for NO2 Gas SensorNanocomposite Thin Film for NO2 Gas Sensor
    Ashutosh Tiwari
    Songjun Li
    [J]. Polymer Journal, 2009, 41 : 726 - 732
  • [24] Thin film membrane for CO2 separation with sweeping gas method
    Ben-Mansour, R.
    Li, H.
    Habib, M. A.
    [J]. ENERGY, 2018, 144 : 619 - 626
  • [25] Swift heavy ion irradiated SnO2 thin film sensor for efficient detection of SO2 gas
    Tyagi, Punit
    Sharma, Savita
    Tomar, Monika
    Singh, Fouran
    Gupta, Vinay
    [J]. NUCLEAR INSTRUMENTS & METHODS IN PHYSICS RESEARCH SECTION B-BEAM INTERACTIONS WITH MATERIALS AND ATOMS, 2016, 379 : 219 - 223
  • [26] Statistical Modelling of Changes in Concentrations of Atmospheric NO2 and SO2
    Szyda, J.
    Wierzbicki, H.
    Stoklosa, A.
    [J]. POLISH JOURNAL OF ENVIRONMENTAL STUDIES, 2009, 18 (06): : 1123 - 1129
  • [27] Health risks of NO2, SPM and SO2 in Delhi (India)
    Pandey, JS
    Kumar, R
    Devotta, S
    [J]. ATMOSPHERIC ENVIRONMENT, 2005, 39 (36) : 6868 - 6874
  • [28] EFFECTS OF NO2 ON HOOP PINE CAN BE COUNTERACTED BY SO2
    MURRAY, F
    CLARKE, K
    WILSON, S
    [J]. EUROPEAN JOURNAL OF FOREST PATHOLOGY, 1992, 22 (6-7) : 403 - 409
  • [29] Detection of low NO2 concentrations with low power micromachined tin oxide gas sensors
    Horrillo, MC
    Sayago, I
    Arés, L
    Rodrigo, J
    Gutiérrez, J
    Götz, A
    Gràcia, I
    Fonseca, L
    Cané, C
    Lora-Tamayo, E
    [J]. SENSORS AND ACTUATORS B-CHEMICAL, 1999, 58 (1-3) : 325 - 329
  • [30] Seasonal characteristics of SO2, NO2, and CO emissions in and around the Indo-Gangetic Plain
    Mallik, C.
    Lal, S.
    [J]. ENVIRONMENTAL MONITORING AND ASSESSMENT, 2014, 186 (02) : 1295 - 1310