Mechanically controlled binary conductance switching of a single-molecule junction
Quek SY, Kamenetska M, Steigerwald ML, Choi HJ, Louie SG, Hybertsen MS, Neaton JB, Venkataraman L. 2009. Mechanically controlled binary conductance switching of a single-molecule junction. Nature Nanotechnology. 4(4), 230–234.
Download (ext.)
https://arxiv.org/abs/0901.1139
[Preprint]
Journal Article
| Published
| English
Scopus indexed
Author
Quek, Su Ying;
Kamenetska, Maria;
Steigerwald, Michael L.;
Choi, Hyoung Joon;
Louie, Steven G.;
Hybertsen, Mark S.;
Neaton, J. B.;
Venkataraman, LathaISTA
Abstract
Molecular-scale components are expected to be central to the realization of nanoscale electronic devices1,2,3. Although molecular-scale switching has been reported in atomic quantum point contacts4,5,6, single-molecule junctions provide the additional flexibility of tuning the on/off conductance states through molecular design. To date, switching in single-molecule junctions has been attributed to changes in the conformation or charge state of the molecule7,8,9,10,11,12. Here, we demonstrate reversible binary switching in a single-molecule junction by mechanical control of the metal–molecule contact geometry. We show that 4,4'-bipyridine–gold single-molecule junctions can be reversibly switched between two conductance states through repeated junction elongation and compression. Using first-principles calculations, we attribute the different measured conductance states to distinct contact geometries at the flexible but stable nitrogen–gold bond: conductance is low when the N–Au bond is perpendicular to the conducting π-system, and high otherwise. This switching mechanism, inherent to the pyridine–gold link, could form the basis of a new class of mechanically activated single-molecule switches.
Publishing Year
Date Published
2009-04-01
Journal Title
Nature Nanotechnology
Publisher
Springer Nature
Volume
4
Issue
4
Page
230-234
ISSN
eISSN
IST-REx-ID
Cite this
Quek SY, Kamenetska M, Steigerwald ML, et al. Mechanically controlled binary conductance switching of a single-molecule junction. Nature Nanotechnology. 2009;4(4):230-234. doi:10.1038/nnano.2009.10
Quek, S. Y., Kamenetska, M., Steigerwald, M. L., Choi, H. J., Louie, S. G., Hybertsen, M. S., … Venkataraman, L. (2009). Mechanically controlled binary conductance switching of a single-molecule junction. Nature Nanotechnology. Springer Nature. https://doi.org/10.1038/nnano.2009.10
Quek, Su Ying, Maria Kamenetska, Michael L. Steigerwald, Hyoung Joon Choi, Steven G. Louie, Mark S. Hybertsen, J. B. Neaton, and Latha Venkataraman. “Mechanically Controlled Binary Conductance Switching of a Single-Molecule Junction.” Nature Nanotechnology. Springer Nature, 2009. https://doi.org/10.1038/nnano.2009.10.
S. Y. Quek et al., “Mechanically controlled binary conductance switching of a single-molecule junction,” Nature Nanotechnology, vol. 4, no. 4. Springer Nature, pp. 230–234, 2009.
Quek SY, Kamenetska M, Steigerwald ML, Choi HJ, Louie SG, Hybertsen MS, Neaton JB, Venkataraman L. 2009. Mechanically controlled binary conductance switching of a single-molecule junction. Nature Nanotechnology. 4(4), 230–234.
Quek, Su Ying, et al. “Mechanically Controlled Binary Conductance Switching of a Single-Molecule Junction.” Nature Nanotechnology, vol. 4, no. 4, Springer Nature, 2009, pp. 230–34, doi:10.1038/nnano.2009.10.
All files available under the following license(s):
Copyright Statement:
This Item is protected by copyright and/or related rights. [...]
Link(s) to Main File(s)
Access Level
Open Access
Export
Marked PublicationsOpen Data ISTA Research Explorer
Sources
PMID: 19350032
PubMed | Europe PMC
arXiv 0901.1139