Electron transport through metal–molecule contacts greatly affects the operation and performance of electronic devices based on organic semiconductors1,2,3,4 and is at the heart of molecular electronics exploiting single-molecule junctions5,6,7,8. Much of our understanding of the charge injection and extraction processes in these systems relies on our knowledge of the potential barrier at the contact. Despite significant experimental and theoretical advances a clear rationale of the contact barrier at the single-molecule level is still missing. Here, we use scanning tunnelling microscopy to probe directly the nanocontact between a single molecule and a metal electrode in unprecedented detail. Our experiments show a significant variation on ...
We study the impact of electrode band structure on transport through single-molecule junctions by me...
Carbon-based nanostructures are attracting tremendous interest as components in ultrafast electronic...
We study single-molecule oligo(phenylene ethynylene)dithiol junctions by means of inelastic electron...
Electron transport through metal-molecule contacts greatly affects the operation and performance of ...
Electron transport through metal–molecule contacts greatly affects the operation and performance of ...
Single molecule-based devices represent the ultimate limit in device design, with promising applicat...
ABSTRACT Molecular junctions have been characterized to determine the influence of the metal contact...
This thesis presents several studies performed in the field of “molecular electronics” using scannin...
In this thesis, molecules on metal surfaces are explored using low-temperature scanning tunneling mi...
In this thesis, molecules on metal surfaces are explored using low-temperature scanning tunneling mi...
Molecular junctions have been characterized to determine the influence of the metal contact formatio...
Abstract: The realization of molecular-scale electronic devices will require the development of nove...
Probing the electronic properties of an individual molecule is a far from trivial task. In order to ...
Recent advances in nanofabrication techniques have made possible to contact individual molecules bet...
We report the results of an extensive investigation of metal–molecule–metal tunnel junctions based o...
We study the impact of electrode band structure on transport through single-molecule junctions by me...
Carbon-based nanostructures are attracting tremendous interest as components in ultrafast electronic...
We study single-molecule oligo(phenylene ethynylene)dithiol junctions by means of inelastic electron...
Electron transport through metal-molecule contacts greatly affects the operation and performance of ...
Electron transport through metal–molecule contacts greatly affects the operation and performance of ...
Single molecule-based devices represent the ultimate limit in device design, with promising applicat...
ABSTRACT Molecular junctions have been characterized to determine the influence of the metal contact...
This thesis presents several studies performed in the field of “molecular electronics” using scannin...
In this thesis, molecules on metal surfaces are explored using low-temperature scanning tunneling mi...
In this thesis, molecules on metal surfaces are explored using low-temperature scanning tunneling mi...
Molecular junctions have been characterized to determine the influence of the metal contact formatio...
Abstract: The realization of molecular-scale electronic devices will require the development of nove...
Probing the electronic properties of an individual molecule is a far from trivial task. In order to ...
Recent advances in nanofabrication techniques have made possible to contact individual molecules bet...
We report the results of an extensive investigation of metal–molecule–metal tunnel junctions based o...
We study the impact of electrode band structure on transport through single-molecule junctions by me...
Carbon-based nanostructures are attracting tremendous interest as components in ultrafast electronic...
We study single-molecule oligo(phenylene ethynylene)dithiol junctions by means of inelastic electron...