Embedding energetically stable single metal atoms in the surface of Pt nanocatalysts exposed to varied temperature (T) and hydrogen pressure (P) could open up new possibilities in selective and dynamical engineering of alloyed Pt catalysts, particularly interesting for hydrogenation reactions. In this work, an environmental segregation energy model is developed to predict the stability and the surface composition evolution of 24 Metal M-promoted Pt surfaces (with M: Cu, Ag, Au, Ni, Pd, Co, Rh and Ir) under varied T and P. Counterintuitive to expectations, the results show that the more reactive alloy component (i.e., the one forming the strongest chemical bond with the hydrogen) is not the one that segregates to the surface. Moreover, using...
Absorbed hydrogen can dramatically increase hydrogenation activity of Pd nanoparticles and was predi...
The alloy-core@shell nanoparticle structure combines the advantages of a robust noble-metal shell an...
Small adsorbed molecules play a key role in the morphology of inorganic nanoparticles. The presence ...
Using density-functional theory, we predict stable alloy configurations (ground states) for a 1 nm P...
\u3cp\u3e Heterogeneous single-atom catalys...
Dans les conditions de travail, les catalyseurs formés par des nanoparticules (NP) de métaux de tran...
This thesis entails the synthesis, automated catalytic testing, and in situ molecular characterizati...
Here, we evaluate three different noble metal co-catalysts (Pd, Pt, and Au) that are present as sing...
Summary: Here, we evaluate three different noble metal co-catalysts (Pd, Pt, and Au) that are presen...
A major practical challenge in heterogeneous catalysis is to minimize the loading of expensive plati...
Unlike nanostructured metal catalysts, supported single-atom catalysts (SACs) contain only atomicall...
Using density-functional theory, we predict stable alloy configurations (ground states) for a 1 nm P...
Suppression of catalyst deactivation without compromising activity has been a long-standing yet elus...
International audiencePlatinum is the most versatile element in catalysis, but it is rare and its hi...
A major practical challenge in heterogeneous catalysis is to minimize the loading of expensive plati...
Absorbed hydrogen can dramatically increase hydrogenation activity of Pd nanoparticles and was predi...
The alloy-core@shell nanoparticle structure combines the advantages of a robust noble-metal shell an...
Small adsorbed molecules play a key role in the morphology of inorganic nanoparticles. The presence ...
Using density-functional theory, we predict stable alloy configurations (ground states) for a 1 nm P...
\u3cp\u3e Heterogeneous single-atom catalys...
Dans les conditions de travail, les catalyseurs formés par des nanoparticules (NP) de métaux de tran...
This thesis entails the synthesis, automated catalytic testing, and in situ molecular characterizati...
Here, we evaluate three different noble metal co-catalysts (Pd, Pt, and Au) that are present as sing...
Summary: Here, we evaluate three different noble metal co-catalysts (Pd, Pt, and Au) that are presen...
A major practical challenge in heterogeneous catalysis is to minimize the loading of expensive plati...
Unlike nanostructured metal catalysts, supported single-atom catalysts (SACs) contain only atomicall...
Using density-functional theory, we predict stable alloy configurations (ground states) for a 1 nm P...
Suppression of catalyst deactivation without compromising activity has been a long-standing yet elus...
International audiencePlatinum is the most versatile element in catalysis, but it is rare and its hi...
A major practical challenge in heterogeneous catalysis is to minimize the loading of expensive plati...
Absorbed hydrogen can dramatically increase hydrogenation activity of Pd nanoparticles and was predi...
The alloy-core@shell nanoparticle structure combines the advantages of a robust noble-metal shell an...
Small adsorbed molecules play a key role in the morphology of inorganic nanoparticles. The presence ...