Corzo Neil V, Raskop Jérémy, Chandra Aveek, Sheremet Alexandra S, Gouraud Baptiste, Laurat Julien
Laboratoire Kastler Brossel, Sorbonne Université, CNRS, ENS-Université PSL, Collège de France, Paris, France.
Centro de Investigación y Estudios Avanzados del Instituto Politécnico Nacional - Unidad Querétaro, Querétaro, Mexico.
Nature. 2019 Feb;566(7744):359-362. doi: 10.1038/s41586-019-0902-3. Epub 2019 Feb 4.
Considerable efforts have been recently devoted to combining ultracold atoms and nanophotonic devices to obtain not only better scalability and figures of merit than in free-space implementations, but also new paradigms for atom-photon interactions. 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, we observe a single collective atomic excitation 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.
最近,人们付出了巨大努力将超冷原子与纳米光子器件相结合,不仅要获得比自由空间实现更好的可扩展性和品质因数,还要获得原子 - 光子相互作用的新范式。介质波导为这种集成提供了一个有前景的平台,因为它们能够对传播的光进行紧密的横向限制,在单通配置中实现强光子 - 原子耦合,并可能通过引导光子介导长程原子 - 原子相互作用。然而,在这种原子 - 波导界面中制备非经典量子态尚未实现。在这里,通过使用沿光学纳米纤维捕获的单个铯原子阵列,我们观察到单个集体原子激发与纳米级波导耦合。存储的集体纠缠态可以通过外部激光脉冲有效地读出,从而导致单个光子按需发射到引导模式中。我们通过抑制双光子分量来表征发射的单光子,并确认原子激发的单光子特性,其可以以约25%的效率被检索到。我们的结果展示了波导量子电动力学新兴领域所必需的一种能力,可应用于量子网络、量子非线性光学和量子多体物理。