Controlling the size, dispersion, and shape of nanoparticles (NPs) in the high-temperature range is a key topic for the development of new technologies with applications in the particular fields of catalysis and energy storage. In this article, we present an approach combining in situ transmission electron microscopy (TEM), electron tomography (ET), and molecular dynamics (MD) calculations for assessing the evolution of Pt NPs deposited onto few-layer graphene supports. Spherical Pt NPs with average sizes of 2 nm located preferentially at the support topographical defects (e.g., steps and edges) diffuse and coalesce along these defects, such that, after annealing to 700 °C, the nanoparticles were located exclusively here. Their dispersion r...
Molecular dynamics simulations employing the ReaxFF reactive force field have been carried out to an...
The thermal characteristics of bimetallic Pt-Pd nanoparticles, both free and graphite-supported, wer...
Phase-change Ge2Sb2Te5 nanoparticles (NPs), that are promising for next-generation phase-change memo...
Controlling the size, dispersion, and shape of nanoparticles (NPs) in the high-temperature range is ...
International audienceControlling the size, dispersion, and shape of nanoparticles (NPs) in the high...
The formation of graphene layers on MgO-supported Pt nanoparticles was studied by both in situ and e...
In situ low-voltage transmission electron microscopy (TEM) was performed to study the evolution of s...
State-of-the-art catalysts are often created via deposition of monolayers, sub-monolayers or nanopar...
Supported metal nanoparticles play key roles in nanoelectronics, sensors, energy storage/conversion,...
Molecular dynamics simulations employing the ReaxFF reactive force field have been carried out to an...
Multiscale simulation study results of multilayer structures consisting of graphene sheets with embe...
In the present study, molecular dynamics simulations have been utilized to provide fundamental under...
Molecular simulation is used to model the structural change of carbon nanoparticles in terms of tota...
Understanding how nanostructure and atomic-scale defects of the support affect metal catalyst nanopa...
International audienceMagnetron sputtering deposition has already demonstrated its ability for the f...
Molecular dynamics simulations employing the ReaxFF reactive force field have been carried out to an...
The thermal characteristics of bimetallic Pt-Pd nanoparticles, both free and graphite-supported, wer...
Phase-change Ge2Sb2Te5 nanoparticles (NPs), that are promising for next-generation phase-change memo...
Controlling the size, dispersion, and shape of nanoparticles (NPs) in the high-temperature range is ...
International audienceControlling the size, dispersion, and shape of nanoparticles (NPs) in the high...
The formation of graphene layers on MgO-supported Pt nanoparticles was studied by both in situ and e...
In situ low-voltage transmission electron microscopy (TEM) was performed to study the evolution of s...
State-of-the-art catalysts are often created via deposition of monolayers, sub-monolayers or nanopar...
Supported metal nanoparticles play key roles in nanoelectronics, sensors, energy storage/conversion,...
Molecular dynamics simulations employing the ReaxFF reactive force field have been carried out to an...
Multiscale simulation study results of multilayer structures consisting of graphene sheets with embe...
In the present study, molecular dynamics simulations have been utilized to provide fundamental under...
Molecular simulation is used to model the structural change of carbon nanoparticles in terms of tota...
Understanding how nanostructure and atomic-scale defects of the support affect metal catalyst nanopa...
International audienceMagnetron sputtering deposition has already demonstrated its ability for the f...
Molecular dynamics simulations employing the ReaxFF reactive force field have been carried out to an...
The thermal characteristics of bimetallic Pt-Pd nanoparticles, both free and graphite-supported, wer...
Phase-change Ge2Sb2Te5 nanoparticles (NPs), that are promising for next-generation phase-change memo...