Author
Listed:
- Henriette Lissau
(University of Copenhagen)
- Riccardo Frisenda
(Kavli Institute of Nanoscience, Delft University of Technology)
- Stine T. Olsen
(University of Copenhagen)
- Martyn Jevric
(University of Copenhagen)
- Christian R. Parker
(University of Copenhagen)
- Anders Kadziola
(University of Copenhagen)
- Thorsten Hansen
(University of Copenhagen)
- Herre S. J. van der Zant
(Kavli Institute of Nanoscience, Delft University of Technology)
- Mogens Brøndsted Nielsen
(University of Copenhagen)
- Kurt V. Mikkelsen
(University of Copenhagen)
Abstract
The ability of molecules to change colour on account of changes in solvent polarity is known as solvatochromism and used spectroscopically to characterize charge-transfer transitions in donor–acceptor molecules. Here we report that donor–acceptor-substituted molecular wires also exhibit distinct properties in single-molecule electronics under the influence of a bias voltage, but in absence of solvent. Two oligo(phenyleneethynylene) wires with donor–acceptor substitution on the central ring (cruciform-like) exhibit remarkably broad conductance peaks measured by the mechanically controlled break-junction technique with gold contacts, in contrast to the sharp peak of simpler molecules. From a theoretical analysis, we explain this by different degrees of charge delocalization and hence cross-conjugation at the central ring. Thus, small variations in the local environment promote the quinoid resonance form (off), the linearly conjugated (on) or any form in between. This shows how the conductance of donor–acceptor cruciforms is tuned by small changes in the environment.
Suggested Citation
Henriette Lissau & Riccardo Frisenda & Stine T. Olsen & Martyn Jevric & Christian R. Parker & Anders Kadziola & Thorsten Hansen & Herre S. J. van der Zant & Mogens Brøndsted Nielsen & Kurt V. Mikkelse, 2015.
"Tracking molecular resonance forms of donor–acceptor push–pull molecules by single-molecule conductance experiments,"
Nature Communications, Nature, vol. 6(1), pages 1-8, December.
Handle:
RePEc:nat:natcom:v:6:y:2015:i:1:d:10.1038_ncomms10233
DOI: 10.1038/ncomms10233
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