Kinetics of Chemisorption on the Surface of Nanodispersed SnO2–PdOx and Selective Determination of CO and H2 in Air
Abstract
:1. Introduction
2. Materials and Methods
2.1. Sensors Fabrication
2.2. Sensor Measurements
2.3. Kinetics of CO Oxidation on Gas Sensitive Layer
- Measurement of the temperature dependence of carbon monoxide concentration after the catalyst at a constant carbon monoxide concentration and at a constant gas flow rate at the reactor inlet. These are the so-called catalyst light-off curves. As will be shown below, these curves are not thermal but purely kinetic in nature; however, by tradition, we will keep the traditional name. To analyze the experimental curves, we used the Sigma Plot program;
- Measurement of the dependence of the concentration of carbon monoxide at the outlet of the reactor on the gas flow rate and, therefore, on the contact time of the gas with the catalyst. In this case, the gas concentration at the reactor inlet and the reactor temperature were maintained constant. For a first-order reaction, graphs plotted in the logarithm of concentration—residence time in the reaction zone (reverse flow rate) coordinates should be straight lines;
- Measurement of carbon monoxide concentration at the reactor outlet as a function of its concentration at the reactor inlet. In this case, the reactor temperature and flow rate were kept constant. For a first-order reaction, graphs plotted in the coordinate conversion—inlet concentration should be straight lines parallel to the concentration axis.
3. Results
3.1. Sensor Conductivity in Non-Stationary Temperature Mode
3.2. Kinetics of Carbon Monoxide Oxidation
- Carbon monoxide oxidation catalysts can be in two states: (1) the surface of catalyst clusters is covered with a layer of adsorbed carbon monoxide molecules; (2) the surface of catalyst clusters is covered with a layer of adsorbed oxygen molecules;
- The reaction mechanisms in these two states of the catalyst differ sharply from each other: in state (1), oxygen from the gas phase interacts with adsorbed carbon monoxide; in state (2), carbon monoxide from the gas phase interacts with adsorbed oxygen; the rate of reactions in state (1) is 4–5 times lower than in state (2);
- The activation energy of the carbon monoxide oxidation reaction in state (1) does not depend on the oxygen concentration; however, the pre-exponential factor is proportional to the oxygen concentration. Moreover, when the catalyst powder is diluted with inert alumina powder, the activation energy does not change, and the pre-exponential factor decreases in proportion to the degree of catalyst dilution;
- The transition of the catalyst from state (1) to state (2) occurs abruptly with a decrease in the concentration of carbon monoxide in the gas phase below a certain limit, depending on the type of catalyst; with a decrease in the concentration of carbon monoxide in the gas phase, the avalanche-like clearing of catalyst surface from a layer of adsorbed carbon monoxide molecules takes place;
- The transition from state (1) to state (2) is reversible; the reverse transition from state (2) to state (1) occurs with some delay as the concentration of carbon monoxide increases;
- The carbon monoxide oxidation reaction in both states of the catalyst obeys the first-order kinetic law, and the “minus first-order” known from the literature for this reaction is associated with some efficient processes arising from the superposition of processes (1) and (2).
4. Discussion
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Analyte Concentration, ppm | R1 Value for H2 | R1 Value for CO |
---|---|---|
0 | 0.080 | 0.080 |
2 | 0.108 | 0.248 |
5 | 0.099 | 0.383 |
10 | 0.103 | 0.367 |
20 | 0.066 | 0.284 |
50 | 0.029 | 0.255 |
100 | 0.009 | 0.192 |
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Vasiliev, A.; Shaposhnik, A.; Moskalev, P.; Kul, O. Kinetics of Chemisorption on the Surface of Nanodispersed SnO2–PdOx and Selective Determination of CO and H2 in Air. Sensors 2023, 23, 3730. https://doi.org/10.3390/s23073730
Vasiliev A, Shaposhnik A, Moskalev P, Kul O. Kinetics of Chemisorption on the Surface of Nanodispersed SnO2–PdOx and Selective Determination of CO and H2 in Air. Sensors. 2023; 23(7):3730. https://doi.org/10.3390/s23073730
Chicago/Turabian StyleVasiliev, Alexey, Alexey Shaposhnik, Pavel Moskalev, and Oleg Kul. 2023. "Kinetics of Chemisorption on the Surface of Nanodispersed SnO2–PdOx and Selective Determination of CO and H2 in Air" Sensors 23, no. 7: 3730. https://doi.org/10.3390/s23073730
APA StyleVasiliev, A., Shaposhnik, A., Moskalev, P., & Kul, O. (2023). Kinetics of Chemisorption on the Surface of Nanodispersed SnO2–PdOx and Selective Determination of CO and H2 in Air. Sensors, 23(7), 3730. https://doi.org/10.3390/s23073730