The catalytic activity of metal nanoparticles can be altered by applying strain, which changes the crystalline lattice spacing and modifies the electronic properties of the metal. Understanding the role of elastic strain during catalytic reactions is thus crucial for catalyst design. Here, we show how single highly faceted Pt nanoparticles expand or contract upon interaction with different gas atmospheres using in situ nano-focused coherent X-ray diffraction imaging. We also demonstrate inter-particle heterogeneities, as they differ in development of strain under CO oxidation reaction conditions. The reported observations offer new insights into the design of catalysts exploiting strain effects.</p
Nanostructures with specific crystallographic planes display distinctive physico-chemical properties...
Surface strain is widely employed in gas phase catalysis and electrocatalysis to control the binding...
Surface strain is widely employed in gas phase catalysis and electrocatalysis to control the binding...
The catalytic activity of metal nanoparticles can be altered by applying strain, which changes the c...
The catalytic activity of metal nanoparticles can be altered by applying strain, which changes the c...
The catalytic activity of metal nanoparticles can be altered by applying strain, which changes the c...
The catalytic activity of metal nanoparticles can be altered by applying strain, which changes the c...
\u3cp\u3eThe catalytic activity of metal nanoparticles can be altered by applying strain, which chan...
International audienceAbstract Nanostructures with specific crystallographic planes display distinct...
International audienceAbstract Nanostructures with specific crystallographic planes display distinct...
Nanostructures with specific crystallographic planes display distinctive physico-chemical properties...
International audienceAbstract Nanostructures with specific crystallographic planes display distinct...
International audienceAbstract Nanostructures with specific crystallographic planes display distinct...
International audienceAbstract Nanostructures with specific crystallographic planes display distinct...
International audienceAbstract Nanostructures with specific crystallographic planes display distinct...
Nanostructures with specific crystallographic planes display distinctive physico-chemical properties...
Surface strain is widely employed in gas phase catalysis and electrocatalysis to control the binding...
Surface strain is widely employed in gas phase catalysis and electrocatalysis to control the binding...
The catalytic activity of metal nanoparticles can be altered by applying strain, which changes the c...
The catalytic activity of metal nanoparticles can be altered by applying strain, which changes the c...
The catalytic activity of metal nanoparticles can be altered by applying strain, which changes the c...
The catalytic activity of metal nanoparticles can be altered by applying strain, which changes the c...
\u3cp\u3eThe catalytic activity of metal nanoparticles can be altered by applying strain, which chan...
International audienceAbstract Nanostructures with specific crystallographic planes display distinct...
International audienceAbstract Nanostructures with specific crystallographic planes display distinct...
Nanostructures with specific crystallographic planes display distinctive physico-chemical properties...
International audienceAbstract Nanostructures with specific crystallographic planes display distinct...
International audienceAbstract Nanostructures with specific crystallographic planes display distinct...
International audienceAbstract Nanostructures with specific crystallographic planes display distinct...
International audienceAbstract Nanostructures with specific crystallographic planes display distinct...
Nanostructures with specific crystallographic planes display distinctive physico-chemical properties...
Surface strain is widely employed in gas phase catalysis and electrocatalysis to control the binding...
Surface strain is widely employed in gas phase catalysis and electrocatalysis to control the binding...