We describe a fast and versatile method to functionalize high-quality graphene with organic molecules by exploiting the synergistic effect of supramolecular and covalent chemistry. With this goal, we designed and synthesized molecules comprising a long aliphatic chain and an aryl diazonium salt. Thanks to the long chain, these molecules physisorb from solution onto CVD graphene or bulk graphite, self-assembling in an ordered monolayer. The sample is successively transferred into an aqueous electrolyte, to block any reorganization or desorption of the monolayer. An electrochemical impulse is used to transform the diazonium group into a radical capable of grafting covalently to the substrate and transforming the physisorption into a covalent ...
Fast and efficient surface functionalization of graphene is achieved by the electrochemical formatio...
Making workable devices from graphene Graphene is difficult to handle: • Tendency to aggregate • ...
Graphene is a newly available conductive material ideally suited for forming well-defined interfaces...
We describe a fast and versatile method to functionalize high-quality graphene with organic molecule...
Development of applications for graphene are currently hampered by its poor dispersion in common, lo...
We shine light on the covalent modification of graphite and graphene substrates using diazonium chem...
We shine light on the covalent modification of graphite and graphene substrates using diazonium chem...
Graphene is a material of great potential in a broad range of applications, for each of which specif...
International audienceThe controlled covalent functionalization of the graphene channel of a field e...
Covalent functionalization of graphene is highly sought after, not only in view of the potential app...
A convenient covalent functionalization approach and nanopatterning method of graphite and graphene ...
An approach for nanoscale covalent functionalization of graphite surfaces employing self-assembled m...
We shine light on the covalent modification of graphite and graphene substrates using diazonium chem...
An approach for nanoscale covalent functionalization of graphite surfaces employing self-assembled m...
A convenient covalent functionalization approach and nanopatterning method of graphite and graphene ...
Fast and efficient surface functionalization of graphene is achieved by the electrochemical formatio...
Making workable devices from graphene Graphene is difficult to handle: • Tendency to aggregate • ...
Graphene is a newly available conductive material ideally suited for forming well-defined interfaces...
We describe a fast and versatile method to functionalize high-quality graphene with organic molecule...
Development of applications for graphene are currently hampered by its poor dispersion in common, lo...
We shine light on the covalent modification of graphite and graphene substrates using diazonium chem...
We shine light on the covalent modification of graphite and graphene substrates using diazonium chem...
Graphene is a material of great potential in a broad range of applications, for each of which specif...
International audienceThe controlled covalent functionalization of the graphene channel of a field e...
Covalent functionalization of graphene is highly sought after, not only in view of the potential app...
A convenient covalent functionalization approach and nanopatterning method of graphite and graphene ...
An approach for nanoscale covalent functionalization of graphite surfaces employing self-assembled m...
We shine light on the covalent modification of graphite and graphene substrates using diazonium chem...
An approach for nanoscale covalent functionalization of graphite surfaces employing self-assembled m...
A convenient covalent functionalization approach and nanopatterning method of graphite and graphene ...
Fast and efficient surface functionalization of graphene is achieved by the electrochemical formatio...
Making workable devices from graphene Graphene is difficult to handle: • Tendency to aggregate • ...
Graphene is a newly available conductive material ideally suited for forming well-defined interfaces...