Robust organic radical molecular junctions using acetylene terminated groups for c-au bond formation

Journal Article (2018)
Research Group
QN/van der Zant Lab
Copyright
© 2018 Francesc Bejarano, I.J. Olavarria Contreras, Andrea Droghetti, Ivan Rungger, Alexander Rudnev, Diego Gutiérrez, Marta Mas-Torrent, Jaume Veciana, H.S.J. van der Zant, E. Burzuri Linares, More Authors
DOI related publication
https://doi.org/10.1021/jacs.7b10019
More Info
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Publication Year
2018
Language
English
Copyright
© 2018 Francesc Bejarano, I.J. Olavarria Contreras, Andrea Droghetti, Ivan Rungger, Alexander Rudnev, Diego Gutiérrez, Marta Mas-Torrent, Jaume Veciana, H.S.J. van der Zant, E. Burzuri Linares, More Authors
Research Group
QN/van der Zant Lab
Issue number
5
Volume number
140
Pages (from-to)
1691-1696
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Abstract

Organic paramagnetic and electroactive molecules are attracting interest as core components of molecular electronic and spintronic devices. Currently, further progress is hindered by the modest stability and reproducibility of the molecule/electrode contact. We report the synthesis of a persistent organic radical bearing one and two terminal alkyne groups to form Au-C σ bonds. The formation and stability of self-assembled monolayers and the electron transport through single-molecule junctions at room temperature have been studied. The combined analysis of both systems demonstrates that this linker forms a robust covalent bond with gold and a better-defined contact when compared to traditional sulfur-based linkers. Density functional theory and quantum transport calculations support the experimental observation highlighting a reduced variability of conductance values for the C-Au based junction. Our findings advance the quest for robustness and reproducibility of devices based on electroactive molecules.

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