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Multifrequency multi-qubit entanglement based on plasmonic hot spots.


ABSTRACT: The theoretical method to study strong coupling between an ensemble of quantum emitters (QEs) and surface plasmons excited by the nanoparticle cluster has been presented by using a rigorous first-principles electromagnetic Green's tensor technique. We have demonstrated that multi-qubit entanglements for two-level QEs can be produced at different coupling resonance frequencies, when they locate in the hot spots of the metallic nanoparticle cluster. The duration of quantum beats for such an entanglement can reach two orders longer than that for the entanglement in a photonic cavity. The phenomenon originates from collective coupling resonance excitation of the cluster. At the frequency of single scattering resonance, the entanglement cannot be produced although the single QE spontaneous decay rate is very big.

SUBMITTER: Ren J 

PROVIDER: S-EPMC4563568 | biostudies-literature | 2015 Sep

REPOSITORIES: biostudies-literature

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Multifrequency multi-qubit entanglement based on plasmonic hot spots.

Ren Jun J   Wu Tong T   Zhang Xiangdong X  

Scientific reports 20150909


The theoretical method to study strong coupling between an ensemble of quantum emitters (QEs) and surface plasmons excited by the nanoparticle cluster has been presented by using a rigorous first-principles electromagnetic Green's tensor technique. We have demonstrated that multi-qubit entanglements for two-level QEs can be produced at different coupling resonance frequencies, when they locate in the hot spots of the metallic nanoparticle cluster. The duration of quantum beats for such an entang  ...[more]

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