Molecular films present an elegant way for the uniform functionalization or doping of graphene. Here, we present an in situ study on the initial growth of copper phthalocyanine (CuPc) on epitaxial graphene on Ir(111). We followed the growth up to a closed monolayer with low energy electron microscopy and selected area electron diffraction (μLEED). The molecules coexist on graphene in a disordered phase without long-range order and an ordered crystalline phase. The local topography of the graphene substrate plays an important role in the nucleation process of the crystalline phase. Graphene flakes on Ir(111) feature regions that are under more tensile stress than others. We observe that the CuPc molecules form ordered domains initially on th...
Graphene, a two-dimensional allotrope of carbon, has, since its discovery in 2004, taken the world o...
The growth of graphene by molecular beam epitaxy from an elemental carbon precursor is a very promis...
doi:10.1088/1367-2630/11/2/023006 Abstract. Catalytic decomposition of hydrocarbons on transition me...
The epitaxial growth and preferred molecular orientation of copper phthalocyanine (CuPc) molecules o...
The adsorption of metal-phthalocyanine (MPc) layers (M = Fe, Co, Cu) assembled on graphene/Ir(111) i...
Superstructures of metal-free phthalocyanine (2H-Pc) molecules on graphene-covered Ir(111) have been...
Iron-phthalocyanine (FePc) molecules have been adsorbed on a graphene sheet prepared on the Ir(111) ...
The adsorption of metal\u2013phthalocyanine (MPc) layers (M = Fe, Co, Cu) assembled on graphene/Ir(1...
Advances in synthesis are imperative if graphene is to fulfill its scientific and technological pote...
Iron-phthalocyanine molecules self-assemble on the moiré pattern of graphene/Ir(111) as a flat and w...
International audienceWe report on the intercalation of a submonolayer of copper at 775K underneath ...
Graphene grown on crystalline metal surfaces is a good candidate to act as a buffer layer between th...
Iron-phthalocyanine molecules self-assemble on the moir\ue9 pattern of graphene/Ir(111) as a flat an...
Superstructures of metal-free phthalocyanine (2H-Pc) molecules on graphene-covered Ir(111) have been...
The assembling of metal phthalocyanines on the rippled moiré superlattice of graphene/Ir(111) interc...
Graphene, a two-dimensional allotrope of carbon, has, since its discovery in 2004, taken the world o...
The growth of graphene by molecular beam epitaxy from an elemental carbon precursor is a very promis...
doi:10.1088/1367-2630/11/2/023006 Abstract. Catalytic decomposition of hydrocarbons on transition me...
The epitaxial growth and preferred molecular orientation of copper phthalocyanine (CuPc) molecules o...
The adsorption of metal-phthalocyanine (MPc) layers (M = Fe, Co, Cu) assembled on graphene/Ir(111) i...
Superstructures of metal-free phthalocyanine (2H-Pc) molecules on graphene-covered Ir(111) have been...
Iron-phthalocyanine (FePc) molecules have been adsorbed on a graphene sheet prepared on the Ir(111) ...
The adsorption of metal\u2013phthalocyanine (MPc) layers (M = Fe, Co, Cu) assembled on graphene/Ir(1...
Advances in synthesis are imperative if graphene is to fulfill its scientific and technological pote...
Iron-phthalocyanine molecules self-assemble on the moiré pattern of graphene/Ir(111) as a flat and w...
International audienceWe report on the intercalation of a submonolayer of copper at 775K underneath ...
Graphene grown on crystalline metal surfaces is a good candidate to act as a buffer layer between th...
Iron-phthalocyanine molecules self-assemble on the moir\ue9 pattern of graphene/Ir(111) as a flat an...
Superstructures of metal-free phthalocyanine (2H-Pc) molecules on graphene-covered Ir(111) have been...
The assembling of metal phthalocyanines on the rippled moiré superlattice of graphene/Ir(111) interc...
Graphene, a two-dimensional allotrope of carbon, has, since its discovery in 2004, taken the world o...
The growth of graphene by molecular beam epitaxy from an elemental carbon precursor is a very promis...
doi:10.1088/1367-2630/11/2/023006 Abstract. Catalytic decomposition of hydrocarbons on transition me...