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Scalable photonic network architecture based on motional averaging in room temperature gas.


ABSTRACT: Quantum interfaces between photons and atomic ensembles have emerged as powerful tools for quantum technologies. Efficient storage and retrieval of single photons requires long-lived collective atomic states, which is typically achieved with immobilized atoms. Thermal atomic vapours, which present a simple and scalable resource, have only been used for continuous variable processing or for discrete variable processing on short timescales where atomic motion is negligible. Here we develop a theory based on motional averaging to enable room temperature discrete variable quantum memories and coherent single-photon sources. We demonstrate the feasibility of this approach to scalable quantum memories with a proof-of-principle experiment with room temperature atoms contained in microcells with spin-protecting coating, placed inside an optical cavity. The experimental conditions correspond to a few photons per pulse and a long coherence time of the forward scattered photons is demonstrated, which is the essential feature of the motional averaging.

SUBMITTER: Borregaard J 

PROVIDER: S-EPMC4834638 | biostudies-literature | 2016 Apr

REPOSITORIES: biostudies-literature

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Scalable photonic network architecture based on motional averaging in room temperature gas.

Borregaard J J   Zugenmaier M M   Petersen J M JM   Shen H H   Vasilakis G G   Jensen K K   Polzik E S ES   Sørensen A S AS  

Nature communications 20160414


Quantum interfaces between photons and atomic ensembles have emerged as powerful tools for quantum technologies. Efficient storage and retrieval of single photons requires long-lived collective atomic states, which is typically achieved with immobilized atoms. Thermal atomic vapours, which present a simple and scalable resource, have only been used for continuous variable processing or for discrete variable processing on short timescales where atomic motion is negligible. Here we develop a theor  ...[more]

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