Wet carbon interfaces are ubiquitous in the natural world and exhibit anomalous properties, which could be exploited by emerging technologies. However, progress is limited by lack of understanding at the molecular level. Remarkably, even for the most fundamental system (a single water molecule interacting with graphene), there is no consensus on the nature of the interaction. We tackle this by performing an extensive set of complementary state-of-the-art computer simulations on some of the world’s largest supercomputers. From this effort a consensus on the water–graphene interaction strength has been obtained. Our results have significant impact for the physical understanding, as they indicate that the interaction is weaker than predicted p...
p. 12348–12356We have investigated the structure, adsorption, electronic states, and charge transfer...
We present the result of molecular-dynamics simulations of water adsorbed on top of a single graphen...
We have studied how water modifies the surface of graphene and in particular how the surface conduct...
Wet carbon interfaces are ubiquitous in the natural world and exhibit anomalous properties, which co...
The electronic structure of the zero-gap two-dimensional graphene has a charge neutrality point exac...
Water monomer adsorption on graphene is examined with state-of-the- art electronic structure approac...
We develop a theory to model the van der Waals interactions between liquid and graphene, including q...
We report the wetting behavior of graphitic surface−water interfaces through the calculation of the ...
The interaction of water with graphene has been a quintessential example of hydrophobic interactions...
Holey-graphene (HG) is a particular form of nanoporous graphene consisting of a vertically separated...
cited By 15International audienceThe dependence of the wettability of graphene on the nature of the ...
We analyze and compare the structural, dynamical, and electronic properties of liquid water next to ...
Confined water can have properties dramatically different from bulk water, and these properties can ...
Second-order Møller-Plesset perturbation theory has been used to calculate the interaction energy be...
The behavior of liquids separated by a single graphene membrane has been studied with extensive mole...
p. 12348–12356We have investigated the structure, adsorption, electronic states, and charge transfer...
We present the result of molecular-dynamics simulations of water adsorbed on top of a single graphen...
We have studied how water modifies the surface of graphene and in particular how the surface conduct...
Wet carbon interfaces are ubiquitous in the natural world and exhibit anomalous properties, which co...
The electronic structure of the zero-gap two-dimensional graphene has a charge neutrality point exac...
Water monomer adsorption on graphene is examined with state-of-the- art electronic structure approac...
We develop a theory to model the van der Waals interactions between liquid and graphene, including q...
We report the wetting behavior of graphitic surface−water interfaces through the calculation of the ...
The interaction of water with graphene has been a quintessential example of hydrophobic interactions...
Holey-graphene (HG) is a particular form of nanoporous graphene consisting of a vertically separated...
cited By 15International audienceThe dependence of the wettability of graphene on the nature of the ...
We analyze and compare the structural, dynamical, and electronic properties of liquid water next to ...
Confined water can have properties dramatically different from bulk water, and these properties can ...
Second-order Møller-Plesset perturbation theory has been used to calculate the interaction energy be...
The behavior of liquids separated by a single graphene membrane has been studied with extensive mole...
p. 12348–12356We have investigated the structure, adsorption, electronic states, and charge transfer...
We present the result of molecular-dynamics simulations of water adsorbed on top of a single graphen...
We have studied how water modifies the surface of graphene and in particular how the surface conduct...