Model of the Structure of Cerium Oxide Crystalline Surfaces
2019, Materials Today: Proceedings
https://doi.org/10.1016/J.MATPR.2019.05.052Abstract
The outstanding properties of cerium oxide from its capacity to transit from Ce 3+ to Ce 4+ (and from Ce 4+ to Ce 3+) make it very useful for a wide range of technological applications of great importance. We performed experiments sending pulses of CO that interact with the surface of nano cubes of CeO 2 with low index faces (100). We model this process through the statistical description of the creation of oxygen vacancies leading to the appearance of Ce 2 O 3. The model is able to predict the composition of the equilibrium nano cubes surface under different experimental conditions. The theoretical results are compared with the obtained experimental values of CO consumption, which is related to the presence of Ce 3+ atoms.
FAQs
AI
What explains the preference for (100) surface in ceria interactions with CO?
The (100) surface shows coordination number 2, favoring vacancy generation during CO interactions, while (110) surfaces, with coordination number 1, exhibit reduced catalytic effectiveness.
How was the oxygen storage capacity of ceria nanocubes determined?
Oxygen storage capacity was assessed using CO pulses with samples treated under controlled gas flows, revealing varying results across temperatures from 400 to 700 °C.
What are the main configurations observed on the (100) ceria surface?
The possible configurations are: all Ce 4+, three Ce 4+ and one Ce 3+, or two Ce 4+ and two Ce 3+; higher Ce 3+ counts are disallowed.
What challenges were faced in modeling ceria surface behavior at high temperatures?
The model overestimated Ce 3+ production at elevated temperatures, deviating from experimental results due to unaccounted oxygen vacancies affecting oxidation states.
When does the formation of Ce 3+ on ceria surfaces occur according to the study?
Ce 3+ formation is predicted to initiate above 300 °C, consistent with experimental observations, which show minimal Ce 3+ presence below this temperature.
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