Noncovalent functionalization via physisorption of organic molecules provides a scalable approach for modifying the electronic structure of graphene while preserving its excellent carrier mobilities. Here we investigated the physisorption of long-chain acenes, namely, hexacene and its fluorinated derivative perfluorohexacene, on bilayer graphene for tunable graphene devices using first-principles methods. We find that the adsorption of these molecules leads to the formation of localized states in the electronic structure of graphene close to its Fermi level, which could be readily tuned by an external electric field in the range of ±3 eV/nm. The electric field not only creates a variable band gap as large as 250 meV in bilayer graphene, but...
We investigate the atomic and electronic structures of cyclooctatetraene (COT) molecules on graphene...
This thesis includes work done on graphene-based materials, examining their unique electronic proper...
Graphene has conquered the field of Cutting Edge Technology as the ultimate next generation material...
Noncovalent functionalization via physisorption of organic molecules provides a scalable approach fo...
International audienceThe combination of graphene with molecules offers promising opportunities to a...
Carbon is one of the most versatile materials available to man, for hundreds of years the 3D forms o...
The interest in understanding the interaction between graphene and atoms that are adsorbed on its su...
The ability to modify the electronic properties of monolayer graphene via charge-donating or charge-...
© 2015 The Royal Society of Chemistry. The electronic structure of physisorbed molecules containing ...
Graphene demonstrates many exceptional properties that makes it a promising candidate in various app...
We review first the unique band structure of graphene and explain how the linear dispersion near the...
In certain configurations, the aromatic properties of benzene ring structured molecules allow for un...
We investigate the atomic and electronic structures of cyclooctatetraene (COT) molecules on graphene...
Using the density functional theory combined with both the van der Waals correction and the effectiv...
International audienceGraphene sheets (mono- and multilayers) were synthesized by chemical vapor dep...
We investigate the atomic and electronic structures of cyclooctatetraene (COT) molecules on graphene...
This thesis includes work done on graphene-based materials, examining their unique electronic proper...
Graphene has conquered the field of Cutting Edge Technology as the ultimate next generation material...
Noncovalent functionalization via physisorption of organic molecules provides a scalable approach fo...
International audienceThe combination of graphene with molecules offers promising opportunities to a...
Carbon is one of the most versatile materials available to man, for hundreds of years the 3D forms o...
The interest in understanding the interaction between graphene and atoms that are adsorbed on its su...
The ability to modify the electronic properties of monolayer graphene via charge-donating or charge-...
© 2015 The Royal Society of Chemistry. The electronic structure of physisorbed molecules containing ...
Graphene demonstrates many exceptional properties that makes it a promising candidate in various app...
We review first the unique band structure of graphene and explain how the linear dispersion near the...
In certain configurations, the aromatic properties of benzene ring structured molecules allow for un...
We investigate the atomic and electronic structures of cyclooctatetraene (COT) molecules on graphene...
Using the density functional theory combined with both the van der Waals correction and the effectiv...
International audienceGraphene sheets (mono- and multilayers) were synthesized by chemical vapor dep...
We investigate the atomic and electronic structures of cyclooctatetraene (COT) molecules on graphene...
This thesis includes work done on graphene-based materials, examining their unique electronic proper...
Graphene has conquered the field of Cutting Edge Technology as the ultimate next generation material...