Controlling nanoparticle (NP) surface strain, i.e. compression (or stretch) of surface atoms, is an important approach to tune NP surface chemistry and to optimize NP catalysis for chemical reactions. Here we show that surface Pt strain in the core/shell FePt/Pt NPs with Pt in three atomic layers can be rationally tuned via core structural transition from cubic solid solution [denoted as face centered cubic (fcc)] structure to tetragonal intermetallic [denoted as face centered tetragonal (fct)] structure. The high activity observed from the fct-FePt/Pt NPs for oxygen reduction reaction (ORR) is due to the release of the overcompressed Pt strain by the fct-FePt as suggested by quantum mechanics–molecular mechanics (QM–MM) simulations. The Pt...
Surface strain is widely employed in gas phase catalysis and electrocatalysis to control the binding...
Nanomaterials with core-shell architectures are prominent examples of strain-engineered materials. T...
International audienceVariations in the interatomic distances lead to altered d -band centre for a g...
Surface strains in core–shell nanoparticles modify catalytic activity. Here, a continuum-based strat...
Heterogeneous catalysis is an enabling technology that utilises transition metal nanoparticles (NPs)...
Fine-tuning nanocatalysts to enhance their catalytic activity and durability is crucial to commercia...
International audienceVariations in the interatomic distances lead to altered d-band centre for a gi...
In this article, we present a density functional theory (DFT) study of nanoparticles (NPs) using a m...
Electrocatalysis undeniably offers noteworthy improvements to future energy conversion and storage t...
Polymer electrolyte membrane fuel cells (PEMFCs) are promising energy-conversion devices due to thei...
Single atom catalyst and ultrathin two-dimensional (2D) nanostructures exhibit improved properties b...
Surface strain is widely employed in gas phase catalysis and electrocatalysis to control the binding...
Nanomaterials with core-shell architectures are prominent examples of strain-engineered materials. T...
International audienceVariations in the interatomic distances lead to altered d -band centre for a g...
Surface strains in core–shell nanoparticles modify catalytic activity. Here, a continuum-based strat...
Heterogeneous catalysis is an enabling technology that utilises transition metal nanoparticles (NPs)...
Fine-tuning nanocatalysts to enhance their catalytic activity and durability is crucial to commercia...
International audienceVariations in the interatomic distances lead to altered d-band centre for a gi...
In this article, we present a density functional theory (DFT) study of nanoparticles (NPs) using a m...
Electrocatalysis undeniably offers noteworthy improvements to future energy conversion and storage t...
Polymer electrolyte membrane fuel cells (PEMFCs) are promising energy-conversion devices due to thei...
Single atom catalyst and ultrathin two-dimensional (2D) nanostructures exhibit improved properties b...
Surface strain is widely employed in gas phase catalysis and electrocatalysis to control the binding...
Nanomaterials with core-shell architectures are prominent examples of strain-engineered materials. T...
International audienceVariations in the interatomic distances lead to altered d -band centre for a g...