Coherent control of a nanomechanical two-level system

dc.contributor.authorFaust, Thomasdeu
dc.contributor.authorRieger, Johannesdeu
dc.contributor.authorSeitner, Maximilian
dc.contributor.authorKotthaus, Jörg P.deu
dc.contributor.authorWeig, Eva M.
dc.date.accessioned2013-05-08T10:10:33Zdeu
dc.date.available2013-05-08T10:10:33Zdeu
dc.date.issued2012deu
dc.description.abstractThe Bloch sphere is a generic picture describing a coupled two-level system and the coherent dynamics of its superposition states under control of electromagnetic fields. It is commonly employed to visualise a broad variety of phenomena ranging from spin ensembles and atoms to quantum dots and superconducting circuits. The underlying Bloch equations describe the state evolution of the two-level system and allow characterising both energy and phase relaxation processes in a simple yet powerful manner. Here we demonstrate the realisation of a nanomechanical two-level system which is driven by radio frequency signals. It allows to extend the above Bloch sphere formalism to nanoelectromechanical systems. Our realisation is based on the two orthogonal fundamental flexural modes of a high quality factor nanostring resonator which are strongly coupled by a dielectric gradient field. Full Bloch sphere control is demonstrated via Rabi, Ramsey and Hahn echo experiments. This allows manipulating the classical superposition state of the coupled modes in amplitude and phase and enables deep insight into the decoherence mechanisms of nanomechanical systems. We have determined the energy relaxation time T1 and phase relaxation times T2 and T2*, and find them all to be equal. This not only indicates that energy relaxation is the dominating source of decoherence, but also demonstrates that reversible dephasing processes are negligible in such collective mechanical modes. We thus conclude that not only T1 but also T2 can be increased by engineering larger mechanical quality factors. After a series of ground-breaking experiments on ground state cooling and non-classical signatures of nanomechanical resonators in recent years, this is of particular interest in the context of quantum information processing.eng
dc.description.versionpublished
dc.identifier.arxiv1212.3172deu
dc.identifier.ppn382633415deu
dc.identifier.urihttp://kops.uni-konstanz.de/handle/123456789/22767
dc.language.isoengdeu
dc.legacy.dateIssued2013-05-08deu
dc.rightsterms-of-usedeu
dc.rights.urihttps://rightsstatements.org/page/InC/1.0/deu
dc.subject.ddc530deu
dc.titleCoherent control of a nanomechanical two-level systemeng
dc.typePREPRINTdeu
dspace.entity.typePublication
kops.citation.bibtex
@unpublished{Faust2012Coher-22767,
  year={2012},
  title={Coherent control of a nanomechanical two-level system},
  author={Faust, Thomas and Rieger, Johannes and Seitner, Maximilian and Kotthaus, Jörg P. and Weig, Eva M.}
}
kops.citation.iso690FAUST, Thomas, Johannes RIEGER, Maximilian SEITNER, Jörg P. KOTTHAUS, Eva M. WEIG, 2012. Coherent control of a nanomechanical two-level systemdeu
kops.citation.iso690FAUST, Thomas, Johannes RIEGER, Maximilian SEITNER, Jörg P. KOTTHAUS, Eva M. WEIG, 2012. Coherent control of a nanomechanical two-level systemeng
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    <dcterms:abstract xml:lang="eng">The Bloch sphere is a generic picture describing a coupled two-level system and the coherent dynamics of its superposition states under control of electromagnetic fields. It is commonly employed to visualise a broad variety of phenomena ranging from spin ensembles and atoms to quantum dots and superconducting circuits. The underlying Bloch equations describe the state evolution of the two-level system and allow characterising both energy and phase relaxation processes in a simple yet powerful manner. Here we demonstrate the realisation of a nanomechanical two-level system which is driven by radio frequency signals. It allows to extend the above Bloch sphere formalism to nanoelectromechanical systems. Our realisation is based on the two orthogonal fundamental flexural modes of a high quality factor nanostring resonator which are strongly coupled by a dielectric gradient field. Full Bloch sphere control is demonstrated via Rabi, Ramsey and Hahn echo experiments. This allows manipulating the classical superposition state of the coupled modes in amplitude and phase and enables deep insight into the decoherence mechanisms of nanomechanical systems. We have determined the energy relaxation time T1 and phase relaxation times T2 and T2*, and find them all to be equal. This not only indicates that energy relaxation is the dominating source of decoherence, but also demonstrates that reversible dephasing processes are negligible in such collective mechanical modes. We thus conclude that not only T1 but also T2 can be increased by engineering larger mechanical quality factors. After a series of ground-breaking experiments on ground state cooling and non-classical signatures of nanomechanical resonators in recent years, this is of particular interest in the context of quantum information processing.</dcterms:abstract>
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