Bimetallic nano-particles taking a core/shell structure dispersed on metal-oxide supports work more efficiently than the mono-metallic ones as heterogeneous catalyst. In order to elucidate the high catalytic activities, it is essential to analyze quantitatively the size and structure of the core/shell particles. Here, we demonstrate that high-resolution medium energy ion scattering (MEIS) spectrometry makes it possible to identify growth of bimetallic core/shell nano-particles and also to determine the average size of core and shell, respectively together with the size distribution with an accuracy better than 0.1 nm. As an example, Au(core)-Pd(shell) particles with a nominal size (outer diameter) of 2.4 and 3.7 nm prepared by an alcohol re...
International audienceThe present study shows that high-resolution medium energy ion scattering (MEI...
Bimetallic core-shell catalysts represent a new pathway to create highly selective and highly active...
Bimetallic core–shell nanoparticles have recently emerged as a new class of functional materials bec...
Despite all efforts to explore the structural properties of bimetallic nanoparticles, there is still...
This paper describes the internal structure of Au−Pd nanoparticles exhibiting newly discovered three...
International audienceAccurately measuring the shape, structure and concentration of nanoparticles (...
International audienceAccurately measuring the shape, structure and concentration of nanoparticles (...
International audienceAccurately measuring the shape, structure and concentration of nanoparticles (...
.Bimetallic nanoparticles of Au–Pd find important applications in catalysis. Their catalytic perform...
A comparative X-ray powder diffraction study on poly(N-vinyl pyrrolidone) (PVP)-stabilized palladium...
Nanometer-sized materials have significantly different chemical and physical properties compared to ...
Scanning Tunnelling Microscopy (STM) was utilised together with the high resolution depth-profiling ...
Nanometer-sized materials have significantly different chemical and physical properties compared to ...
Nanometer-sized materials have significantly different chemical and physical properties compared to ...
Nanometer-sized materials have significantly different chemical and physical properties compared to ...
International audienceThe present study shows that high-resolution medium energy ion scattering (MEI...
Bimetallic core-shell catalysts represent a new pathway to create highly selective and highly active...
Bimetallic core–shell nanoparticles have recently emerged as a new class of functional materials bec...
Despite all efforts to explore the structural properties of bimetallic nanoparticles, there is still...
This paper describes the internal structure of Au−Pd nanoparticles exhibiting newly discovered three...
International audienceAccurately measuring the shape, structure and concentration of nanoparticles (...
International audienceAccurately measuring the shape, structure and concentration of nanoparticles (...
International audienceAccurately measuring the shape, structure and concentration of nanoparticles (...
.Bimetallic nanoparticles of Au–Pd find important applications in catalysis. Their catalytic perform...
A comparative X-ray powder diffraction study on poly(N-vinyl pyrrolidone) (PVP)-stabilized palladium...
Nanometer-sized materials have significantly different chemical and physical properties compared to ...
Scanning Tunnelling Microscopy (STM) was utilised together with the high resolution depth-profiling ...
Nanometer-sized materials have significantly different chemical and physical properties compared to ...
Nanometer-sized materials have significantly different chemical and physical properties compared to ...
Nanometer-sized materials have significantly different chemical and physical properties compared to ...
International audienceThe present study shows that high-resolution medium energy ion scattering (MEI...
Bimetallic core-shell catalysts represent a new pathway to create highly selective and highly active...
Bimetallic core–shell nanoparticles have recently emerged as a new class of functional materials bec...