In situ low-energy electron microscopy (LEEM) of graphene growth combined with measurements of the graphene structure and electronic band structure has been used to study graphene on Pt (111). Growth by carbon segregation produces macroscopic monolayer graphene domains extending continuously across Pt (111) substrate steps and bounded by strongly faceted edges. LEEM during cooling from the growth temperature shows the propagation of wrinkles in the graphene sheet, driven by thermal stress. The lattice mismatch between graphene and Pt (111) is accommodated by moiré structures with a large number of different rotational variants, without a clear preference for a particular interface geometry. Fast and slow growing graphene domains exhibit moi...
We study the nucleation and growth of epitaxial graphene on Pt(111) surfaces at the atomic level usi...
AbstractThe crystallinity of graphene flakes and their orientation with respect to the Cu(111) subst...
We have studied large areas of (v3×v3)R30° graphene commensurate with a Pt(111) substrate. A combina...
In situ low-energy electron microscopy (LEEM) of graphene growth combined with measurements of the g...
Understanding the coupling of graphene with its local environment is critical to be able to integrat...
Póster presentado en la GRAPHEsp2014 (A European Conference/Workshop on the Synthesis, Characterizat...
In this study, we explore the dimensional aspect of structure-driven surface properties of metal mon...
This work reports the peculiar properties of a graphene film prepared by the chemical vapor depositi...
Oral presentation given at the European Conference on Surface Crystallography and Dynamics (ECSCD-12...
Atomic structures of Pt nanoclusters on graphene/Pt(111) were investigated with various techniques t...
Advances in synthesis are imperative if graphene is to fulfill its scientific and technological pote...
Trabajo presentado en GraphITA, celebrado en Bolonia (Italia) del 14 al 18 de septiemnbre de 2015.Gr...
We study the growth of graphene on a Pt(111) surface in stages by varying the annealing temperature ...
Interfaces between graphene and dissimilar materials are needed for making devices, but those interf...
Applying time-dependent photoemission we unravel the graphene growth process on a metallic surface b...
We study the nucleation and growth of epitaxial graphene on Pt(111) surfaces at the atomic level usi...
AbstractThe crystallinity of graphene flakes and their orientation with respect to the Cu(111) subst...
We have studied large areas of (v3×v3)R30° graphene commensurate with a Pt(111) substrate. A combina...
In situ low-energy electron microscopy (LEEM) of graphene growth combined with measurements of the g...
Understanding the coupling of graphene with its local environment is critical to be able to integrat...
Póster presentado en la GRAPHEsp2014 (A European Conference/Workshop on the Synthesis, Characterizat...
In this study, we explore the dimensional aspect of structure-driven surface properties of metal mon...
This work reports the peculiar properties of a graphene film prepared by the chemical vapor depositi...
Oral presentation given at the European Conference on Surface Crystallography and Dynamics (ECSCD-12...
Atomic structures of Pt nanoclusters on graphene/Pt(111) were investigated with various techniques t...
Advances in synthesis are imperative if graphene is to fulfill its scientific and technological pote...
Trabajo presentado en GraphITA, celebrado en Bolonia (Italia) del 14 al 18 de septiemnbre de 2015.Gr...
We study the growth of graphene on a Pt(111) surface in stages by varying the annealing temperature ...
Interfaces between graphene and dissimilar materials are needed for making devices, but those interf...
Applying time-dependent photoemission we unravel the graphene growth process on a metallic surface b...
We study the nucleation and growth of epitaxial graphene on Pt(111) surfaces at the atomic level usi...
AbstractThe crystallinity of graphene flakes and their orientation with respect to the Cu(111) subst...
We have studied large areas of (v3×v3)R30° graphene commensurate with a Pt(111) substrate. A combina...