Imaging at the atomic scale using atomic force microscopy in biocompatible environments is an ongoing challenge. We demonstrate atomic resolution of graphite and hydrogen-intercalated graphene on SiC in air. The main challenges arise from the overall surface cleanliness and the water layers which form on almost all surfaces. To further investigate the influence of the water layers, we compare data taken with a hydrophilic bulk-silicon tip to a hydrophobic bulk-sapphire tip. While atomic resolution can be achieved with both tip materials at moderate interaction forces, there are strong differences in force versus distance spectra which relate to the water layers on the tips and samples. Imaging at very low tip–sample interaction forces resul...
The equilibrium state of graphene surfaces exposed to ambient conditions is of significant importanc...
Atomic hydrogen exposures on a monolayer graphene grown on the SiC(0001) surface are shown to result...
Atomic force microscopy (AFM) images of graphene and graphite show contrast with atomic periodicity....
Graphene is considered as one of the most promising materials for numerous applications such as elec...
Scanning tunneling microscopy (STM) and atomic force microscopy (AFM) images of graphene reveal eith...
We report an investigation of the graphene/substrate interface morphology in large-area polycrystall...
This article addresses the much debated question whether the degree of hydrophobicity of single-laye...
On the SiC(0001) surface (the silicon face of SiC), epitaxial graphene is obtained by sublimation of...
Trabajo presentado en la conferencia Fuerzas y Túnel (FyT2014), celebrada en San Sebastián del 27 al...
We present local electrical characterization of epitaxial graphene grown on both Si- and C-faces of ...
We present an in-depth study of the myriad atomically resolved patterns observed on graphite using t...
Atomic hydrogen exposures on a monolayer graphene grown on the SiC(0001) surface are shown to result...
The interaction of water vapor with hydrophobic surfaces is poorly understood. We utilize graphene t...
International audienceDynamic mode atomic force microscopy phase imaging is known to produce distinc...
AbstractIn order to exploit the potential of graphene in next-generation devices, such as supercapac...
The equilibrium state of graphene surfaces exposed to ambient conditions is of significant importanc...
Atomic hydrogen exposures on a monolayer graphene grown on the SiC(0001) surface are shown to result...
Atomic force microscopy (AFM) images of graphene and graphite show contrast with atomic periodicity....
Graphene is considered as one of the most promising materials for numerous applications such as elec...
Scanning tunneling microscopy (STM) and atomic force microscopy (AFM) images of graphene reveal eith...
We report an investigation of the graphene/substrate interface morphology in large-area polycrystall...
This article addresses the much debated question whether the degree of hydrophobicity of single-laye...
On the SiC(0001) surface (the silicon face of SiC), epitaxial graphene is obtained by sublimation of...
Trabajo presentado en la conferencia Fuerzas y Túnel (FyT2014), celebrada en San Sebastián del 27 al...
We present local electrical characterization of epitaxial graphene grown on both Si- and C-faces of ...
We present an in-depth study of the myriad atomically resolved patterns observed on graphite using t...
Atomic hydrogen exposures on a monolayer graphene grown on the SiC(0001) surface are shown to result...
The interaction of water vapor with hydrophobic surfaces is poorly understood. We utilize graphene t...
International audienceDynamic mode atomic force microscopy phase imaging is known to produce distinc...
AbstractIn order to exploit the potential of graphene in next-generation devices, such as supercapac...
The equilibrium state of graphene surfaces exposed to ambient conditions is of significant importanc...
Atomic hydrogen exposures on a monolayer graphene grown on the SiC(0001) surface are shown to result...
Atomic force microscopy (AFM) images of graphene and graphite show contrast with atomic periodicity....