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dc.contributor.authorYuan, Xueyong-
dc.contributor.authorSchwendtner, Michael-
dc.contributor.authorTrotta, Rinaldo-
dc.contributor.authorHuo, Yongheng-
dc.contributor.authorMartín-Sánchez, Javier-
dc.contributor.authorPiredda, Giovanni-
dc.contributor.authorHuang, Huiying-
dc.contributor.authorEdlinger, Johannes-
dc.contributor.authorDiskus, Christian-
dc.contributor.authorSchmidt, Oliver G.-
dc.contributor.authorJakoby, Bernhard-
dc.contributor.authorKrenner, Hubert J.-
dc.contributor.authorRastelli, Armando-
dc.date.accessioned2020-02-05T12:37:15Z-
dc.date.available2020-02-05T12:37:15Z-
dc.date.issued2019-10-28-
dc.identifier.citationXueyong Yuan, Michael Schwendtner, Rinaldo Trotta, Yongheng Huo, Javier Martín-Sánchez, Giovanni Piredda, Huiying Huang, Johannes Edlinger, Christian Diskus, Oliver G. Schmidt, Bernhard Jakoby, Hubert J. Krenner, Armando Rastelli, Appl. Phys. Lett. 2019; 115 181902eng
dc.identifier.urihttps://ria.asturias.es/RIA/handle/123456789/12627-
dc.description.abstractHybrid systems consisting of a quantum emitter coupled to a mechanical oscillator are receiving increasing attention for fundamental science and potential applications in quantum technologies. In contrast to most of the presented works, in which the oscillator eigenfrequencies are irreversibly determined by the fabrication process, we present here a simple approach to obtain frequency-tunable mechanical resonators based on suspended nanomembranes. The method relies on a micromachined piezoelectric actuator, which we use both to drive resonant oscillations of a suspended Ga(Al)As membrane with embedded quantum dots and to fine tune their mechanical eigenfrequencies. Specifically, we excite oscillations with frequencies of at least 60 MHz by applying an AC voltage to the actuator and tune the eigenfrequencies by at least 25 times their linewidth by continuously varying the elastic stress state in the membranes through a DC voltage. The light emitted by optically excited quantum dots is used as sensitive local strain gauge to monitor the oscillation frequency and amplitude. We expect that our method has the potential to be applicable to other optomechanical systems based on dielectric and semiconductor membranes possibly operating in the quantum regime.eng
dc.language.isoengeng
dc.publisherAIP (American Institute of Physics)eng
dc.relation.ispartofA frequency-tunable nanomembrane mechanical oscillator with embedded quantum dotseng
dc.relation.haspart115eng
dc.relation.hasversion18eng
dc.relation.isreferencedbyNo, esta versión no ha sido citadaeng
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dc.rights.urihttp://creativecommons.org/licenses/by-nc-sa/3.0/deed.eseng
dc.source181902;-
dc.subjectFísicaeng
dc.subjectóptica cuánticaeng
dc.subject.classificationPublicadoeng
dc.titleA frequency-tunable nanomembrane mechanical oscillator with embedded quantum dotseng
dc.typearticleeng
Aparece en las colecciones: Física
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