Electromechanical control of nitrogen-vacancy defect emission using graphene NEMS

Despite recent progress in nano-optomechanics, active control of optical fields at the nanoscale has not been achieved with an on-chip nano-electromechanical system (NEMS) thus far. Here we present a new type of hybrid system, consisting of an on-chip graphene NEMS suspended a few tens of nanometres...

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Veröffentlicht in:Nature communications 2016-01, Vol.7 (1), p.10218-10218, Article 10218
Hauptverfasser: Reserbat-Plantey, Antoine, Schädler, Kevin G., Gaudreau, Louis, Navickaite, Gabriele, Güttinger, Johannes, Chang, Darrick, Toninelli, Costanza, Bachtold, Adrian, Koppens, Frank H. L.
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Sprache:eng
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Zusammenfassung:Despite recent progress in nano-optomechanics, active control of optical fields at the nanoscale has not been achieved with an on-chip nano-electromechanical system (NEMS) thus far. Here we present a new type of hybrid system, consisting of an on-chip graphene NEMS suspended a few tens of nanometres above nitrogen-vacancy centres (NVCs), which are stable single-photon emitters embedded in nanodiamonds. Electromechanical control of the photons emitted by the NVC is provided by electrostatic tuning of the graphene NEMS position, which is transduced to a modulation of NVC emission intensity. The optomechanical coupling between the graphene displacement and the NVC emission is based on near-field dipole–dipole interaction. This class of optomechanical coupling increases strongly for smaller distances, making it suitable for nanoscale devices. These achievements hold promise for selective control of emitter arrays on-chip, optical spectroscopy of individual nano-objects, integrated optomechanical information processing and open new avenues towards quantum optomechanics. Active control of optical fields at the nanoscale is difficult to achieve. Here, the authors fabricate an on-chip graphene NEMS suspended a few tens of nanometres above nitrogen vacancy centres and demonstrate electromechanical control of the photons emitted by electrostatic tuning of the graphene NEMS position.
ISSN:2041-1723
2041-1723
DOI:10.1038/ncomms10218