In most experimental studies on bimetallic nanoparticles the homogeneous alloying is consistently reported or a priori assumed. It is generally believed that at nanoscale, alloying is promoted even for otherwise immiscible systems. In this study we present evidence that Pd–Pt nanoalloys are much more susceptible to segregation than their bulk counterparts. The spontaneous segregation (chemical ordering) of Pd–Pt nanoalloys was evidenced in hydrogen absorption studies and additionally confirmed by using X-ray photoelectron spectroscopy. The results clearly show that phase segregation in bimetallic nanoparticles do occur despite the lack of the miscibility gap in the Pd–Pt phase diagram, negative heat of mixing and small lattice mismatch for ...
The compositional stability of bimetallic nanoparticles (NPs) is crucial for many applications. We h...
The hydrogen storage capacity of Pd nanoparticles (NPs) decreases as the particles become smaller; h...
The high performance of Pd-based intermetallic nanocatalysts has the potential to replace Pt-contain...
Chemical ordering in bimetallic nanocrystallites can now be efficiently determined by density-functi...
The ability to control nanoscale alloying and phase segregation properties is important for the expl...
International audienceThe compositional stability of bimetallic nanoparticles (NPs) is crucial for m...
Due to their ability to reversibly absorb/desorb hydrogen without hysteresis, Pd–Au nanoalloys have ...
Chemical and physical properties of binary metallic nanoparticles (nanoalloys) are to a great extent...
Chemical and physical properties of binary metallic nanoparticles (nanoalloys) are to a great extent...
International audienceWe identified new magic compositions of Pd-Au nanolloys of simple symmetries a...
International audienceNanoparticles of alloys represent a very interesting subject for fundamental r...
The nanoscale composition and structure of alloy catalysts affect their performance in heterogeneous...
"We predict general trends for surface segregation in binary metal clusters based on the difference ...
Abstract Bimetallic nanoparticle (NP) catalysts are widely used in many heterogeneous gas‐based reac...
Chemical ordering in bimetallic nanocrystallites can now be efficiently determined by density-functi...
The compositional stability of bimetallic nanoparticles (NPs) is crucial for many applications. We h...
The hydrogen storage capacity of Pd nanoparticles (NPs) decreases as the particles become smaller; h...
The high performance of Pd-based intermetallic nanocatalysts has the potential to replace Pt-contain...
Chemical ordering in bimetallic nanocrystallites can now be efficiently determined by density-functi...
The ability to control nanoscale alloying and phase segregation properties is important for the expl...
International audienceThe compositional stability of bimetallic nanoparticles (NPs) is crucial for m...
Due to their ability to reversibly absorb/desorb hydrogen without hysteresis, Pd–Au nanoalloys have ...
Chemical and physical properties of binary metallic nanoparticles (nanoalloys) are to a great extent...
Chemical and physical properties of binary metallic nanoparticles (nanoalloys) are to a great extent...
International audienceWe identified new magic compositions of Pd-Au nanolloys of simple symmetries a...
International audienceNanoparticles of alloys represent a very interesting subject for fundamental r...
The nanoscale composition and structure of alloy catalysts affect their performance in heterogeneous...
"We predict general trends for surface segregation in binary metal clusters based on the difference ...
Abstract Bimetallic nanoparticle (NP) catalysts are widely used in many heterogeneous gas‐based reac...
Chemical ordering in bimetallic nanocrystallites can now be efficiently determined by density-functi...
The compositional stability of bimetallic nanoparticles (NPs) is crucial for many applications. We h...
The hydrogen storage capacity of Pd nanoparticles (NPs) decreases as the particles become smaller; h...
The high performance of Pd-based intermetallic nanocatalysts has the potential to replace Pt-contain...