We have investigated the electron-transfer kinetics of ferrocene groups covalently tethered to surfaces of conductive diamond electrodes. Electrochemical measurements show that the rates are only weakly dependent on chain length but are strongly dependent on the surface coverage; these observations are contrary to what is commonly observed for self-assembled monolayers on gold, pointing to important mechanistic differences in electron transfer processes on covalently bonded materials. Molecular dynamics simulations show that dependence on chain length and molecular density can be readily explained in terms of dynamic crowding effects. At low coverage, conformational flexibility of surface-tethered alkyl chains allows the redox-active ferroc...
This study shows the results obtained when binding alkyl ferrocene molecules on silicon surface form...
Electrochemical studies of a set of ferrocene-labeled helical peptides of increasing length were car...
The electron donor–acceptor dyads are an emerging class of materials showing important applications ...
We have investigated the electron-transfer kinetics of ferrocene groups covalently tethered to surfa...
Electrochemistry is a powerful tool to study self-assembled monolayers. Here, we modified cystamine-...
This thesis discusses factors that govern long-range electron transfer across self- assembled monola...
The impact of the coverage of ferrocene moieties, attached to a silicon electrode modified via hydro...
The three-point adsorption of tripod-shaped molecules enables the formation of robust self-assembled...
In this research the environmental effects related to the position of a redox moiety with the electr...
Electron-transfer rate constants were measured for a variety of molecular systems. Therate constant ...
International audienceThe redox activity of a ferrocenyl monolayer grafted on an n-type Si111 substr...
We present a catalog of electron transfer mediators for investigating the heterogeneous electron tra...
Self-assembled monolayers (SAMs) on electrode surface are attractive as model systems for studies of...
The electron transfer mechanism for the prototypical system ferrocenoyl-glycylcystamine (Fc-Gly-CSA)...
Charge transfer (CT) dynamics across metal-molecule interfaces has important implications for perfor...
This study shows the results obtained when binding alkyl ferrocene molecules on silicon surface form...
Electrochemical studies of a set of ferrocene-labeled helical peptides of increasing length were car...
The electron donor–acceptor dyads are an emerging class of materials showing important applications ...
We have investigated the electron-transfer kinetics of ferrocene groups covalently tethered to surfa...
Electrochemistry is a powerful tool to study self-assembled monolayers. Here, we modified cystamine-...
This thesis discusses factors that govern long-range electron transfer across self- assembled monola...
The impact of the coverage of ferrocene moieties, attached to a silicon electrode modified via hydro...
The three-point adsorption of tripod-shaped molecules enables the formation of robust self-assembled...
In this research the environmental effects related to the position of a redox moiety with the electr...
Electron-transfer rate constants were measured for a variety of molecular systems. Therate constant ...
International audienceThe redox activity of a ferrocenyl monolayer grafted on an n-type Si111 substr...
We present a catalog of electron transfer mediators for investigating the heterogeneous electron tra...
Self-assembled monolayers (SAMs) on electrode surface are attractive as model systems for studies of...
The electron transfer mechanism for the prototypical system ferrocenoyl-glycylcystamine (Fc-Gly-CSA)...
Charge transfer (CT) dynamics across metal-molecule interfaces has important implications for perfor...
This study shows the results obtained when binding alkyl ferrocene molecules on silicon surface form...
Electrochemical studies of a set of ferrocene-labeled helical peptides of increasing length were car...
The electron donor–acceptor dyads are an emerging class of materials showing important applications ...