Highly conducting single-molecule topological insulators based on mono- and di-radical cations
Li L, Low JZ, Wilhelm J, Liao G, Gunasekaran S, Prindle CR, Starr RL, Golze D, Nuckolls C, Steigerwald ML, Evers F, Campos LM, Yin X, Venkataraman L. 2022. Highly conducting single-molecule topological insulators based on mono- and di-radical cations. Nature Chemistry. 14(9), 1061–1067.
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Journal Article
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| English
Scopus indexed
Author
Li, Liang;
Low, Jonathan Z.;
Wilhelm, Jan;
Liao, Guanming;
Gunasekaran, Suman;
Prindle, Claudia R.;
Starr, Rachel L.;
Golze, Dorothea;
Nuckolls, Colin;
Steigerwald, Michael L.;
Evers, Ferdinand;
Campos, Luis M.
All
All
Abstract
Single-molecule topological insulators are promising candidates as conducting wires over nanometre length scales. A key advantage is their ability to exhibit quasi-metallic transport, in contrast to conjugated molecular wires which typically exhibit a low conductance that decays as the wire length increases. Here, we study a family of oligophenylene-bridged bis(triarylamines) with tunable and stable mono- or di-radicaloid character. These wires can undergo one- and two-electron chemical oxidations to the corresponding mono-cation and di-cation, respectively. We show that the oxidized wires exhibit reversed conductance decay with increasing length, consistent with the expectation for Su–Schrieffer–Heeger-type one-dimensional topological insulators. The 2.6-nm-long di-cation reported here displays a conductance greater than 0.1G0, where G0 is the conductance quantum, a factor of 5,400 greater than the neutral form. The observed conductance–length relationship is similar between the mono-cation and di-cation series. Density functional theory calculations elucidate how the frontier orbitals and delocalization of radicals facilitate the observed non-classical quasi-metallic behaviour.
Publishing Year
Date Published
2022-07-07
Journal Title
Nature Chemistry
Publisher
Springer Nature
Volume
14
Issue
9
Page
1061-1067
ISSN
eISSN
IST-REx-ID
Cite this
Li L, Low JZ, Wilhelm J, et al. Highly conducting single-molecule topological insulators based on mono- and di-radical cations. Nature Chemistry. 2022;14(9):1061-1067. doi:10.1038/s41557-022-00978-1
Li, L., Low, J. Z., Wilhelm, J., Liao, G., Gunasekaran, S., Prindle, C. R., … Venkataraman, L. (2022). Highly conducting single-molecule topological insulators based on mono- and di-radical cations. Nature Chemistry. Springer Nature. https://doi.org/10.1038/s41557-022-00978-1
Li, Liang, Jonathan Z. Low, Jan Wilhelm, Guanming Liao, Suman Gunasekaran, Claudia R. Prindle, Rachel L. Starr, et al. “Highly Conducting Single-Molecule Topological Insulators Based on Mono- and Di-Radical Cations.” Nature Chemistry. Springer Nature, 2022. https://doi.org/10.1038/s41557-022-00978-1.
L. Li et al., “Highly conducting single-molecule topological insulators based on mono- and di-radical cations,” Nature Chemistry, vol. 14, no. 9. Springer Nature, pp. 1061–1067, 2022.
Li L, Low JZ, Wilhelm J, Liao G, Gunasekaran S, Prindle CR, Starr RL, Golze D, Nuckolls C, Steigerwald ML, Evers F, Campos LM, Yin X, Venkataraman L. 2022. Highly conducting single-molecule topological insulators based on mono- and di-radical cations. Nature Chemistry. 14(9), 1061–1067.
Li, Liang, et al. “Highly Conducting Single-Molecule Topological Insulators Based on Mono- and Di-Radical Cations.” Nature Chemistry, vol. 14, no. 9, Springer Nature, 2022, pp. 1061–67, doi:10.1038/s41557-022-00978-1.
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PMID: 35798950
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