Organic charge transfer (CT) complexes obtained by combining molecular electron donors and acceptors have attracted much interest due to their potential applications in organic opto-electronic devices. In order to work, these systems must have an electronic matching – the highest occupied molecular orbital (HOMO) of the donor must couple with the lowest unoccupied molecular orbital (LUMO) of the acceptor – and a structural matching, so as to allow direct intermolecular CT. Here it is shown that, when molecules are adsorbed on a metal surface, novel molecular organizations driven by surface-mediated CT can appear that have no counterpart in condensed phase non-covalent assemblies of donor and acceptor molecules. By means of scanning tunnelin...
Controlling the nanoscale morphology of organic thin films represents a critical challenge in the fa...
Beside the fact that they attract highest interest in the field of organic electronics, heteromolecu...
The electron donor–acceptor dyads are an emerging class of materials showing important applications ...
Organic charge transfer (CT) complexes obtained by combining molecular electron donors and acceptors...
Organic charge transfer (CT) complexes obtained by combining molecular electron donors and acceptors...
Trabajo presentado en la conferencia Fuerzas y Túnel (FyT2014), celebrada en San Sebastián del 27 al...
Charge transfer processes between donor-acceptor complexes and metallic electrodes are at the heart ...
During the last decade, interest on the growth and self-assembly of organic molecular species on sol...
Over the past years, ultrathin films consisting of electron donating and accepting molecules have at...
Organic charge transfer (CT) compounds display a wide range of exotic electronic properties (charge-...
PhD Thesis by: Afaf El-Sayed Abd El-Mottaleb.[EN]: In 1987, the Nobel Prize in chemistry was awarded...
Organic/metal interfaces control the performance of many optoelectronic organic devices, including o...
© 2007 American Physical Society. The electronic version of this article is the complete one and can...
© 2017 American Chemical Society. The donor-acceptor interface within molecular charge transfer (CT)...
The archetypal electron acceptor molecule, TCNQ, is generally believed to become bent into an invert...
Controlling the nanoscale morphology of organic thin films represents a critical challenge in the fa...
Beside the fact that they attract highest interest in the field of organic electronics, heteromolecu...
The electron donor–acceptor dyads are an emerging class of materials showing important applications ...
Organic charge transfer (CT) complexes obtained by combining molecular electron donors and acceptors...
Organic charge transfer (CT) complexes obtained by combining molecular electron donors and acceptors...
Trabajo presentado en la conferencia Fuerzas y Túnel (FyT2014), celebrada en San Sebastián del 27 al...
Charge transfer processes between donor-acceptor complexes and metallic electrodes are at the heart ...
During the last decade, interest on the growth and self-assembly of organic molecular species on sol...
Over the past years, ultrathin films consisting of electron donating and accepting molecules have at...
Organic charge transfer (CT) compounds display a wide range of exotic electronic properties (charge-...
PhD Thesis by: Afaf El-Sayed Abd El-Mottaleb.[EN]: In 1987, the Nobel Prize in chemistry was awarded...
Organic/metal interfaces control the performance of many optoelectronic organic devices, including o...
© 2007 American Physical Society. The electronic version of this article is the complete one and can...
© 2017 American Chemical Society. The donor-acceptor interface within molecular charge transfer (CT)...
The archetypal electron acceptor molecule, TCNQ, is generally believed to become bent into an invert...
Controlling the nanoscale morphology of organic thin films represents a critical challenge in the fa...
Beside the fact that they attract highest interest in the field of organic electronics, heteromolecu...
The electron donor–acceptor dyads are an emerging class of materials showing important applications ...