Synthetic methods that allow for the controlled design of well-defined Pt nanoparticles are highly desirable for fundamental catalysis research. In this work, we propose a strategy that allows precise and independent control of the Pt particle size and coverage. Our approach exploits the versatility of the atomic layer deposition (ALD) technique by combining two ALD processes for Pt using different reactants. The particle areal density is controlled by tailoring the number of ALD cycles using trimethyl(methylcyclopentadienyl) platinum and oxygen, while subsequent growth using the same Pt precursor in combination with nitrogen plasma allows for tuning of the particle size at the atomic level. The excellent control over the particle morpholog...
Bimetallic core/shell nanoparticles (NPs) are the subject of intense research due to their unique el...
Particle coarsening is the main cause for thermal deactivation and lifetime reduction of supported P...
Platinum is a material that finds many applications in the fields of nanoelectronics and catalysis d...
International audienceSynthetic methods that allow for the controlled design of well-defined Pt nano...
The increasing interest in atomic layer deposition (ALD) of Pt for the controlled synthesis of suppo...
The deposition of Pd and Pt nanoparticles by atomic layer deposition (ALD) has been studied extensiv...
The deposition of Pd and Pt nanoparticles by atomic layer deposition (ALD) has been studied extensiv...
The increasing interest in atomic layer deposition (ALD) of Pt for the controlled synthesis of suppo...
The increasing interest in atomic layer deposition (ALD) of Pt for the controlled synthesis of suppo...
We present an atomistic understanding of the evolution of the size distribution with temperature and...
We present an atomistic understanding of the evolution of the size distribution with temperature and...
Platinum nanoparticles were grown on alumina by atomic layer deposition using either H<sub>2</sub> o...
We present an atomistic understanding of the evolution of the size distribution with temperature and...
In this paper, the authors demonstrate a novel spatial atomic layer deposition (ALD) process based o...
Bimetallic core/shell nanoparticles (NPs) are the subject of intense research due to their unique el...
Particle coarsening is the main cause for thermal deactivation and lifetime reduction of supported P...
Platinum is a material that finds many applications in the fields of nanoelectronics and catalysis d...
International audienceSynthetic methods that allow for the controlled design of well-defined Pt nano...
The increasing interest in atomic layer deposition (ALD) of Pt for the controlled synthesis of suppo...
The deposition of Pd and Pt nanoparticles by atomic layer deposition (ALD) has been studied extensiv...
The deposition of Pd and Pt nanoparticles by atomic layer deposition (ALD) has been studied extensiv...
The increasing interest in atomic layer deposition (ALD) of Pt for the controlled synthesis of suppo...
The increasing interest in atomic layer deposition (ALD) of Pt for the controlled synthesis of suppo...
We present an atomistic understanding of the evolution of the size distribution with temperature and...
We present an atomistic understanding of the evolution of the size distribution with temperature and...
Platinum nanoparticles were grown on alumina by atomic layer deposition using either H<sub>2</sub> o...
We present an atomistic understanding of the evolution of the size distribution with temperature and...
In this paper, the authors demonstrate a novel spatial atomic layer deposition (ALD) process based o...
Bimetallic core/shell nanoparticles (NPs) are the subject of intense research due to their unique el...
Particle coarsening is the main cause for thermal deactivation and lifetime reduction of supported P...
Platinum is a material that finds many applications in the fields of nanoelectronics and catalysis d...