We present first-principles transport calculations of graphene nanoribbons with chemically reconstructed edge profiles. Depending on the geometry of the defect and the degree of hydrogenation, spectacularly different transport mechanisms are obtained. In the case of monohydrogenated pentagon (heptagon) defects, an effective acceptor (donor) character results in strong electron-hole conductance asymmetry. In contrast, weak backscattering is obtained for defects that preserve the benzenoid structure of graphene. Based on a tight-binding model derived from ab initio calculations, evidence for large conductance scaling fluctuations are found in disordered ribbons with lengths up to the micrometer scale
Sensoy, Mehmet Gokhan/0000-0003-4815-8061WOS: 000456876500012We investigate the transport properties...
We present a first-principles study of the migration and recombination of edge defects (carbon adato...
On-surface synthesis has recently emerged as an effective route towards the atomically precise fabri...
Recent experimental characterizations have clearly visualized edge reconstructions in grap...
International audienceWe present first-principles calculations of quantum transport in chemically do...
International audienceWe present first-principles calculations of quantum transport in chemically do...
Abstract Understanding the roles of disorder and metal/graphene interface on the electronic and tran...
The atomic edges of graphene nanoribbons with anomalous geometry structure were very recently observ...
International audienceWe report a first-principles based study of mesoscopic quantum transport in ch...
Ab initio methods are used to study the spin-resolved transport properties of graphene nanoribbons (...
We unveil the nature of the structural disorder in bottom-up zigzag graphene nanoribbons along with ...
In this thesis, we focus on different aspects of electron transport in nanostructured graphene (such...
A semiempirical model based on density functional results is used to study the effects of chemical e...
In recent years, there has been much interest in modelling graphene nanoribbons as they have great p...
The quantum transport properties of graphene nanoribbon networks are investigated using first-princi...
Sensoy, Mehmet Gokhan/0000-0003-4815-8061WOS: 000456876500012We investigate the transport properties...
We present a first-principles study of the migration and recombination of edge defects (carbon adato...
On-surface synthesis has recently emerged as an effective route towards the atomically precise fabri...
Recent experimental characterizations have clearly visualized edge reconstructions in grap...
International audienceWe present first-principles calculations of quantum transport in chemically do...
International audienceWe present first-principles calculations of quantum transport in chemically do...
Abstract Understanding the roles of disorder and metal/graphene interface on the electronic and tran...
The atomic edges of graphene nanoribbons with anomalous geometry structure were very recently observ...
International audienceWe report a first-principles based study of mesoscopic quantum transport in ch...
Ab initio methods are used to study the spin-resolved transport properties of graphene nanoribbons (...
We unveil the nature of the structural disorder in bottom-up zigzag graphene nanoribbons along with ...
In this thesis, we focus on different aspects of electron transport in nanostructured graphene (such...
A semiempirical model based on density functional results is used to study the effects of chemical e...
In recent years, there has been much interest in modelling graphene nanoribbons as they have great p...
The quantum transport properties of graphene nanoribbon networks are investigated using first-princi...
Sensoy, Mehmet Gokhan/0000-0003-4815-8061WOS: 000456876500012We investigate the transport properties...
We present a first-principles study of the migration and recombination of edge defects (carbon adato...
On-surface synthesis has recently emerged as an effective route towards the atomically precise fabri...