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dc.contributor.authorLeturcq, Renaud
dc.contributor.authorStampfer, Christoph
dc.contributor.authorInderbitzin, Kevin
dc.contributor.authorDurrer, Lukas
dc.contributor.authorHierold, Christofer
dc.contributor.authorMariani, Eros
dc.contributor.authorSchultz, Maximilian G.
dc.contributor.authorvon Oppen, Felix
dc.contributor.authorEnsslin, Klaus
dc.date.accessioned2013-06-24T14:37:35Z
dc.date.issued2009-04-06
dc.description.abstractUnderstanding the influence of vibrational motion of the atoms on electronic transitions in molecules constitutes a cornerstone of quantum physics, as epitomized by the Franck-Condon principle of spectroscopy. Recent advances in building molecular-electronics devices and nanoelectromechanical systems open a new arena for studying the interaction between mechanical and electronic degrees of freedom in transport at the single-molecule level. The tunneling of electrons through molecules or suspended quantum dots has been shown to excite vibrational modes, or vibrons. Beyond this effect, theory predicts that strong electron-vibron coupling dramatically suppresses the current flow at low biases, a collective behaviour known as Franck-Condon blockade. Here we show measurements on quantum dots formed in suspended single-wall carbon nanotubes revealing a remarkably large electron-vibron coupling and, due to the high quality and unprecedented tunability of our samples, admit a quantitative analysis of vibron-mediated electronic transport in the regime of strong electron-vibron coupling. This allows us to unambiguously demonstrate the Franck-Condon blockade in a suspended nanostructure. The large observed electron-vibron coupling could ultimately be a key ingredient for the detection of quantized mechanical motion. It also emphasizes the unique potential for nanoelectromechanical device applications based on suspended graphene sheets and carbon nanotubes.en_GB
dc.identifier.citationVol. 5, pp. 327 - 331en_GB
dc.identifier.doi10.1038/nphys1234
dc.identifier.urihttp://hdl.handle.net/10871/11361
dc.language.isoenen_GB
dc.publisherNature Publishing Groupen_GB
dc.titleFranck-Condon blockade in suspended carbon nanotube quantum dotsen_GB
dc.typeArticleen_GB
dc.date.available2013-06-24T14:37:35Z
dc.identifier.issn1745-2473
dc.descriptionCopyright © 2009 Nature Publishing Groupen_GB
dc.identifier.eissn1745-2481
dc.identifier.journalNature Physicsen_GB


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