We investigate the atomic and electronic structures of cyclooctatetraene (COT) molecules on graphene and analyze their dependence on external gate voltage using first-principles calculations. The external gate voltage is simulated by adding or removing electrons using density functional theory calculations. This allows us to investigate how changes in carrier density modify the molecular shape, orientation, adsorption site, diffusion barrier, and diffusion path. For increased hole doping, COT molecules gradually change their shape to a more flattened conformation and the distance between the molecules and graphene increases while the diffusion barrier drastically decreases. For increased electron doping, an abrupt transition to a planar con...
The organometallic on-surface synthesis of the eight-membered sp2 carbon-based ring cyclooctatetraen...
We performed density-functional theory calculations to study the electronic structures at the interf...
Graphene has conquered the field of Cutting Edge Technology as the ultimate next generation material...
We investigate the atomic and electronic structures of cyclooctatetraene (COT) molecules on graphene...
International audienceGraphene-based two-dimensional materials have attracted an increasing attentio...
Graphene field-effect transistor structures were used to investigate the role of molecular alignment...
Noncovalent functionalization via physisorption of organic molecules provides a scalable approach fo...
© 2015 The Royal Society of Chemistry. The electronic structure of physisorbed molecules containing ...
We theoretically investigate, by means of atomistic molecular dynamics simulations employing a tailo...
The nanoscale organization of cycloparaphenylene molecules when physisorbed on a graphite surface is...
The effect of 1-pyrenesulfonicacid sodium salt (1-PSA), tetracyanoethylene (TCNE) and tetrafluoro- t...
Density functional theory calculations have been performed to assess the electronic structure of gra...
This dissertation research is focused on first principles studies of graphene and single organic mol...
Charge transfer at the interface between dissimilar materials is at the heart of electronics and pho...
Noncovalent functionalization via physisorption of organic molecules provides a scalable approach fo...
The organometallic on-surface synthesis of the eight-membered sp2 carbon-based ring cyclooctatetraen...
We performed density-functional theory calculations to study the electronic structures at the interf...
Graphene has conquered the field of Cutting Edge Technology as the ultimate next generation material...
We investigate the atomic and electronic structures of cyclooctatetraene (COT) molecules on graphene...
International audienceGraphene-based two-dimensional materials have attracted an increasing attentio...
Graphene field-effect transistor structures were used to investigate the role of molecular alignment...
Noncovalent functionalization via physisorption of organic molecules provides a scalable approach fo...
© 2015 The Royal Society of Chemistry. The electronic structure of physisorbed molecules containing ...
We theoretically investigate, by means of atomistic molecular dynamics simulations employing a tailo...
The nanoscale organization of cycloparaphenylene molecules when physisorbed on a graphite surface is...
The effect of 1-pyrenesulfonicacid sodium salt (1-PSA), tetracyanoethylene (TCNE) and tetrafluoro- t...
Density functional theory calculations have been performed to assess the electronic structure of gra...
This dissertation research is focused on first principles studies of graphene and single organic mol...
Charge transfer at the interface between dissimilar materials is at the heart of electronics and pho...
Noncovalent functionalization via physisorption of organic molecules provides a scalable approach fo...
The organometallic on-surface synthesis of the eight-membered sp2 carbon-based ring cyclooctatetraen...
We performed density-functional theory calculations to study the electronic structures at the interf...
Graphene has conquered the field of Cutting Edge Technology as the ultimate next generation material...