In order to exploit the potential of graphene in next-generation devices, such as supercapacitors, rechargeable batteries, displays and ultrathin sensors, it is crucial to understand the solvent interactions with the graphene surface and interlayers, especially where the latter may be in competition with the former, in the medium of application deployment. In this report, we combine quartz crystal microbalance (QCM) and ultrasonic force microscopy methods to investigate the changes in the film-substrate and film-environment interfaces of graphene and graphene oxide films, produced by diverse scalable routes, in both polar (deionised water) and non-polar (dodecane) liquid and vapour environments. In polar liquid environments, we observe nano...
We study the wetting of graphene nanopowders by measuring the water adsorption in nanopowder flakes ...
Knowledge of the structure of interfacial water molecules at electrified solid materials is the firs...
Knowledge of the structure of interfacial water molecules at electrified solid materials is the firs...
AbstractIn order to exploit the potential of graphene in next-generation devices, such as supercapac...
In this paper, we report the experimental work conducted on graphene and graphene oxide thin film co...
Graphene’s nanomechanical behaviour in liquids, vital for its operation in rechargeable batteries, s...
We probe the interfacial forces in graphene-air and graphene-liquid environments with nanoscale reso...
While mechanical and frictional properties of graphene in air have been extensively studied, graphen...
We report the characterisation of exfoliated few layer graphene (FLG) flakes using a range of scanni...
The equilibrium state of graphene surfaces exposed to ambient conditions is of significant importanc...
We report an investigation of the graphene/substrate interface morphology in large-area polycrystall...
We report the nanoscale exploration of the structural, interfacial and nanomechanical properties of ...
Understanding the wettability of graphene is the crucial step toward the design and control of graph...
Understanding the wettability of graphene is the crucial step toward the design and control of graph...
*S Supporting Information ABSTRACT: We study interfacial water trapped between a sheet of graphene a...
We study the wetting of graphene nanopowders by measuring the water adsorption in nanopowder flakes ...
Knowledge of the structure of interfacial water molecules at electrified solid materials is the firs...
Knowledge of the structure of interfacial water molecules at electrified solid materials is the firs...
AbstractIn order to exploit the potential of graphene in next-generation devices, such as supercapac...
In this paper, we report the experimental work conducted on graphene and graphene oxide thin film co...
Graphene’s nanomechanical behaviour in liquids, vital for its operation in rechargeable batteries, s...
We probe the interfacial forces in graphene-air and graphene-liquid environments with nanoscale reso...
While mechanical and frictional properties of graphene in air have been extensively studied, graphen...
We report the characterisation of exfoliated few layer graphene (FLG) flakes using a range of scanni...
The equilibrium state of graphene surfaces exposed to ambient conditions is of significant importanc...
We report an investigation of the graphene/substrate interface morphology in large-area polycrystall...
We report the nanoscale exploration of the structural, interfacial and nanomechanical properties of ...
Understanding the wettability of graphene is the crucial step toward the design and control of graph...
Understanding the wettability of graphene is the crucial step toward the design and control of graph...
*S Supporting Information ABSTRACT: We study interfacial water trapped between a sheet of graphene a...
We study the wetting of graphene nanopowders by measuring the water adsorption in nanopowder flakes ...
Knowledge of the structure of interfacial water molecules at electrified solid materials is the firs...
Knowledge of the structure of interfacial water molecules at electrified solid materials is the firs...