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Molecule Saturation Boosts Acetylene Semihydrogenation Activity and Selectivity on a Core‐Shell Ruthenium@Palladium Catalyst

Chuwei Zhu, Wenlong Xu, Fang Liu, Jie Luo, Junling Lu, Wei‐Xue Li

2023Angewandte Chemie International Edition18 citationsDOI

Abstract

Increasing selectivity without the expense of activity is desired but challenging in heterogeneous catalysis. By revealing the molecule saturation and adsorption sensitivity on overlayer thickness, strain, and coordination of Pd-based catalysts from first-principles calculations, we designed a stable Pd monolayer (ML) catalyst on a Ru terrace to boost both activity and selectivity of acetylene semihydrogenation. The least saturated molecule is most sensitive to the change in catalyst electronic and geometric properties. By simultaneously compressing the Pd ML and exposing the high coordination sites, the adsorption of more saturated ethylene is considerably weakened to facilitate the desorption for high selectivity. The even stronger weakening to the least saturated acetylene drives its hydrogenation such that it is more exothermic, thereby boosting the activity. Tailoring the molecule saturation and its sensitivity to structure and composition provides a tool for rational design of efficient catalysts.

Topics & Concepts

SelectivityCatalysisAcetyleneOverlayerChemistryPalladiumAdsorptionMoleculeSaturation (graph theory)DesorptionEthyleneRutheniumDissociation (chemistry)PhotochemistryChemical engineeringInorganic chemistryPhysical chemistryOrganic chemistryEngineeringMathematicsCombinatoricsAdvanced Photocatalysis TechniquesCatalytic Processes in Materials ScienceMXene and MAX Phase Materials
Molecule Saturation Boosts Acetylene Semihydrogenation Activity and Selectivity on a Core‐Shell Ruthenium@Palladium Catalyst | Litcius