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Dynamic control and quantification of active sites on ceria for CO activation and hydrogenation. | LitMetric

AI Article Synopsis

  • Ceria (CeO) is a key oxide catalyst, but understanding its active sites has been challenging; this study explores its structure-activity relationships for CO activation and hydrogenation.
  • Researchers created well-defined ceria clusters on CeO(111), showing that reduced clusters have strong CO binding while near-stoichiometric clusters facilitate oxidation.
  • Findings suggest that supported ceria clusters are more dynamic and active, providing a new way to identify and optimize active sites, advancing the design of ceria catalysts for syngas conversion.

Article Abstract

Ceria (CeO) is a widely used oxide catalyst, yet the nature of its active sites remains elusive. This study combines model and powder catalyst studies to elucidate the structure-activity relationships in ceria-catalyzed CO activation and hydrogenation. Well-defined ceria clusters are synthesized on planar CeO(111) and exhibit dynamic and tunable ranges of Ce coordination numbers, which enhance their interaction with CO. Reduced ceria clusters (e.g., CeO) bind CO strongly and facilitate its dissociation, while near-stoichiometric clusters (e.g., CeO) adsorb CO weakly and promote oxidation via carbonate formation. Unlike planar ceria surfaces, supported ceria clusters exhibit dynamic properties and enhanced catalytic activity, that mimic those of powder ceria catalysts. Insight from model studies provide a method to quantify active sites on powder ceria and guide further optimization of ceria catalysts for syngas conversion. This work marks a leap toward model-guided catalyst design and highlights the importance of site-specific catalysis.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11544136PMC
http://dx.doi.org/10.1038/s41467-024-53948-1DOI Listing

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