Controlled covalent functionalization of graphitic surfaces with molecular scale precision is crucial for tailored modulation of the chemical and physical properties of carbon materials. We herein present that porous self-assembled molecular networks (SAMNs) act as nanometer scale template for the covalent electrochemical functionalization of graphite using an aryldiazonium salt. Hexagonally aligned achiral grafted species with lateral periodicity of 2.3, 2.7, and 3.0 nm were achieved utilizing SAMNs having different pore-to-pore distances. The unit cell vectors of the grafted pattern match those of the SAMN. After the covalent grafting, the template SAMNs can be removed by simple washing with a common organic solvent. We briefly discuss th...
Functionalization and modification of graphene at the nanometer scale is desirable for many applicat...
We present here the periodic functionalization of a two-dimensional (2D) porous molecular network us...
Over the past few years, two-dimensional (2D) nanoporous networks have attracted great interest as t...
An approach for nanoscale covalent functionalization of graphite surfaces employing self-assembled m...
An approach for nanoscale covalent functionalization of graphite surfaces employing self-assembled m...
A network of self-assembled polystyrene beads was employed as a lithographic mask during covalent fu...
A network of self-assembled polystyrene beads was employed as a lithographic mask during covalent fu...
We describe a fast and versatile method to functionalize high-quality graphene with organic molecule...
A convenient covalent functionalization approach and nanopatterning method of graphite and graphene ...
Highly oriented pyrolytic graphite (HOPG) can be covalently grafted with aryl radicals generated via...
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...
A convenient covalent functionalization approach and nanopatterning method of graphite and graphene ...
A convenient covalent functionalization approach and nanopatterning method of graphite and graphene ...
International audience2D supramolecular self-assembly has emerged as a powerful tool in nanoscience ...
Functionalization and modification of graphene at the nanometer scale is desirable for many applicat...
We present here the periodic functionalization of a two-dimensional (2D) porous molecular network us...
Over the past few years, two-dimensional (2D) nanoporous networks have attracted great interest as t...
An approach for nanoscale covalent functionalization of graphite surfaces employing self-assembled m...
An approach for nanoscale covalent functionalization of graphite surfaces employing self-assembled m...
A network of self-assembled polystyrene beads was employed as a lithographic mask during covalent fu...
A network of self-assembled polystyrene beads was employed as a lithographic mask during covalent fu...
We describe a fast and versatile method to functionalize high-quality graphene with organic molecule...
A convenient covalent functionalization approach and nanopatterning method of graphite and graphene ...
Highly oriented pyrolytic graphite (HOPG) can be covalently grafted with aryl radicals generated via...
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...
A convenient covalent functionalization approach and nanopatterning method of graphite and graphene ...
A convenient covalent functionalization approach and nanopatterning method of graphite and graphene ...
International audience2D supramolecular self-assembly has emerged as a powerful tool in nanoscience ...
Functionalization and modification of graphene at the nanometer scale is desirable for many applicat...
We present here the periodic functionalization of a two-dimensional (2D) porous molecular network us...
Over the past few years, two-dimensional (2D) nanoporous networks have attracted great interest as t...