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Influence of Cs Loading on Pt/m-ZrO2 Water–Gas Shift Catalysts
- Source :
- Catalysts, Volume 11, Issue 5, Catalysts, Vol 11, Iss 570, p 570 (2021)
- Publication Year :
- 2021
- Publisher :
- MDPI AG, 2021.
-
Abstract
- Certain alkali metals (Na, K) at targeted loadings have been shown in recent decades to significantly promote the LT-WGS reaction. This occurs at alkali doping levels where a redshift in the C-H band of formate occurs, indicating electronic weakening of the bond. The C-H bond breaking of formate is the proposed rate-limiting step of the formate associative mechanism, lending support to the occurrence of this mechanism in H2-rich environments of the LT-WGS stage of fuel processors. Continuing in this vein of research, 2%Pt/m-ZrO2 was promoted with various levels of Cs in order to explore its influence on the rate of formate intermediate decomposition, as well as that of LT-WGS in a fixed bed reactor. In situ DRIFTS experiments revealed that Cs promoter loadings of 3.87% to 7.22% resulted in significant acceleration of the forward formate decomposition in steam at 130 °C. Of all of the alkali metals tested to date, the redshift in the formate ν(CH) band with the incorporation of Cs was the greatest. XANES difference experiments at the Pt L2 and L3 edges indicated that the electronic effect was not likely due to an enrichment of electronic density on Pt. CO2 TPD experiments revealed that, unlike Na and K promoters, Cs behaves more like Rb in that the decomposition of the second intermediate in LT-WGS, carbonate species, is hindered due to (1) increased basicity of Cs, (2) the tendency of Cs to cover Pt sites that facilitate CO2 decomposition, and (3) the tendency of Cs to increase Pt particle size as shown by EXAFS results, resulting in fewer Pt sites that facilitate CO2 decomposition. As such, the LT-WGS rate was hindered overall and the rate-limiting step shifted to carbonate decomposition (CO2 removal). Like its Rb counterpart, low levels of added Cs (e.g., 0.72%Cs) were found to improve the stability of the catalyst relative to the unpromoted catalyst<br />the stability comparison was made at similar CO conversion level as well as similar space velocity.
- Subjects :
- Materials science
Hydrogen
alkali promotion
Inorganic chemistry
chemistry.chemical_element
TP1-1185
Catalysis
Water-gas shift reaction
cesium (Cs)
chemistry.chemical_compound
formate
electronic effect
Electronic effect
Formate
Physical and Theoretical Chemistry
QD1-999
Chemical technology
low-temperature water–gas shift (LT-WGS)
Associative substitution
associative mechanism
Chemistry
chemistry
hydrogen
zirconia (ZrO2)
platinum (Pt)
Subjects
Details
- ISSN :
- 20734344
- Volume :
- 11
- Database :
- OpenAIRE
- Journal :
- Catalysts
- Accession number :
- edsair.doi.dedup.....ac1732a0e13c48532ed1ebae0e31ff63
- Full Text :
- https://doi.org/10.3390/catal11050570