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Interplaying coordination and ligand effects to break or make adsorption‐energy scaling relations
by
Brito‐Ravicini, Alvaro
, Calle‐Vallejo, Federico
in
Adsorption
/ adsorption‐energy scaling relations
/ Catalysis
/ Coordination
/ Decomposition
/ Density functional theory
/ Energy
/ energy‐decomposition analysis
/ Flat surfaces
/ ligand effects
/ Ligands
/ Mathematical models
/ Metals
/ near‐surface alloy
/ outer electrons
/ Platinum base alloys
/ Scaling
/ Surface chemistry
/ surface coordination
2022
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Interplaying coordination and ligand effects to break or make adsorption‐energy scaling relations
by
Brito‐Ravicini, Alvaro
, Calle‐Vallejo, Federico
in
Adsorption
/ adsorption‐energy scaling relations
/ Catalysis
/ Coordination
/ Decomposition
/ Density functional theory
/ Energy
/ energy‐decomposition analysis
/ Flat surfaces
/ ligand effects
/ Ligands
/ Mathematical models
/ Metals
/ near‐surface alloy
/ outer electrons
/ Platinum base alloys
/ Scaling
/ Surface chemistry
/ surface coordination
2022
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Do you wish to request the book?
Interplaying coordination and ligand effects to break or make adsorption‐energy scaling relations
by
Brito‐Ravicini, Alvaro
, Calle‐Vallejo, Federico
in
Adsorption
/ adsorption‐energy scaling relations
/ Catalysis
/ Coordination
/ Decomposition
/ Density functional theory
/ Energy
/ energy‐decomposition analysis
/ Flat surfaces
/ ligand effects
/ Ligands
/ Mathematical models
/ Metals
/ near‐surface alloy
/ outer electrons
/ Platinum base alloys
/ Scaling
/ Surface chemistry
/ surface coordination
2022
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Interplaying coordination and ligand effects to break or make adsorption‐energy scaling relations
Journal Article
Interplaying coordination and ligand effects to break or make adsorption‐energy scaling relations
2022
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Overview
The linear relations between adsorption energies are one of the cornerstones of contemporary catalysis in view of the simplicity and predictive power of the computational models built upon them. Despite their extensive use, the exact nature of scaling relations is not yet fully understood, and a comprehensive theory of scaling relations is yet to be elaborated. So far, it is known that scalability is dictated by the degree of resemblance of the adsorbed species. In this work, density functional theory calculations show that CO and OH, two dissimilar species, scale or not depending on the surface facet where they adsorb at Pt alloys. This peculiar behavior arises from an interplay of ligand and geometric effects that can be used to modulate adsorption‐energy scalability. This study opens new possibilities in catalysis, as it shows that surface coordination is a versatile tool to either balance or unbalance the similarities among adsorbates at alloy surfaces. Currently, it is widely accepted that adsorption‐energy scaling relations exist or not depending on the similarity of the adsorbates. Here, we show that CO and OH scale linearly or not on Pt alloys depending on the coordination of the adsorption sites. Hence, ligand and geometric effects can be used to modulate scaling relations, thereby opening new possibilities in catalysis.
Publisher
John Wiley & Sons, Inc,John Wiley and Sons Inc,Wiley
Subject
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