A central idea in electron-transfer theories is the coupling of the electronic state of a molecule to its structure. Here we show experimentally that fine changes to molecular structures by mechanically stretching a single metal complex molecule via changing the metal-ligand bond length can shift its electronic energy levels and predictably guide electron-transfer reactions, leading to the changes in redox state. We monitor the redox state of the molecule by tracking its characteristic conductance, determine the shift in the redox potential due to mechanical stretching of the metal-ligand bond, and perform model calculations to provide insights into the observations. The work reveals that a mechanical force can shift the redox potential of ...
A key target in molecular electronics has been molecules having switchable electrical properties. Sw...
abstract: This thesis develops molecular models for electron transport in molecular junctions and in...
Controlling charge transport through molecules is challenging because it requires engineering of the...
We investigate transport through mechanically triggered single-molecule switches that are based on t...
An appealing feature of molecular electronics is the possibility of inducing changes in the orbital ...
A key target in molecular electronics has been molecules having switchable electrical properties. Sw...
We consider a molecular conduction junction that comprises a redox molecule bridging between metal e...
Electron transfer processes are investigated through conductance measurements of single molecules. M...
Electron transfer is one of the fundamentally important reactions in physics, chemistry, and biology...
Further developments in the field of molecular electronics will require an understanding of the key ...
Controlling charge transport through molecules is challenging because it requires engineering of the...
Understanding electron transfer (ET) on the nanoscale is important to both the frontier of fundament...
The function of solvent in facilitating long-range coupling in donor/bridge/acceptor complexes is no...
Herein we describe the design and synthesis of a redox-dependent single-molecule switch. Appending a...
This thesis studies electronic properties of molecular devices in the limiting cases of strong and w...
A key target in molecular electronics has been molecules having switchable electrical properties. Sw...
abstract: This thesis develops molecular models for electron transport in molecular junctions and in...
Controlling charge transport through molecules is challenging because it requires engineering of the...
We investigate transport through mechanically triggered single-molecule switches that are based on t...
An appealing feature of molecular electronics is the possibility of inducing changes in the orbital ...
A key target in molecular electronics has been molecules having switchable electrical properties. Sw...
We consider a molecular conduction junction that comprises a redox molecule bridging between metal e...
Electron transfer processes are investigated through conductance measurements of single molecules. M...
Electron transfer is one of the fundamentally important reactions in physics, chemistry, and biology...
Further developments in the field of molecular electronics will require an understanding of the key ...
Controlling charge transport through molecules is challenging because it requires engineering of the...
Understanding electron transfer (ET) on the nanoscale is important to both the frontier of fundament...
The function of solvent in facilitating long-range coupling in donor/bridge/acceptor complexes is no...
Herein we describe the design and synthesis of a redox-dependent single-molecule switch. Appending a...
This thesis studies electronic properties of molecular devices in the limiting cases of strong and w...
A key target in molecular electronics has been molecules having switchable electrical properties. Sw...
abstract: This thesis develops molecular models for electron transport in molecular junctions and in...
Controlling charge transport through molecules is challenging because it requires engineering of the...