Waveguide-coupled single collective excitation of atomic arrays.
basic_science · Level V
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- Record sourced from PubMed, PMID 30718773.
- Also identified by DOI 10.1038/s41586-019-0902-3.
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Abstract
Considerable efforts have been recently devoted to combining ultracold atoms and nanophotonic devices<sup>1-4</sup> to obtain not only better scalability and figures of merit than in free-space implementations, but also new paradigms for atom-photon interactions<sup>5</sup>. Dielectric waveguides offer a promising platform for such integration because they enable tight transverse confinement of the propagating light, strong photon-atom coupling in single-pass configurations and potentially long-range atom-atom interactions mediated by the guided photons. However, the preparation of non-classical quantum states in such atom-waveguide interfaces has not yet been realized. Here, by using arrays of individual caesium atoms trapped along an optical nanofibre<sup>6,7</sup>, we observe a single collective atomic excitation<sup>8,9</sup> coupled to a nanoscale waveguide. The stored collective entangled state can be efficiently read out with an external laser pulse, leading to on-demand emission of a single photon into the guided mode. We characterize the emitted single photon via the suppression of the two-photon component and confirm the single character of the atomic excitation, which can be retrieved with an efficiency of about 25%. Our results demonstrate a capability that is essential for the emerging field of waveguide quantum electrodynamics, with applications to quantum networking, quantum nonlinear optics and quantum many-body physics<sup>10,11</sup>.