Coherent single-atom superradiance
arXiv:1705.09136 · doi:10.1126/science.aar2179
Abstract
Quantum effects, prevalent in the microscopic scale, generally elusive in macroscopic systems due to dissipation and decoherence. Quantum phenomena in large systems emerge only when particles are strongly correlated as in superconductors and superfluids. Cooperative interaction of correlated atoms with electromagnetic fields leads to superradiance, the enhanced quantum radiation phenomenon, exhibiting novel physics such as quantum Dicke phase and ultranarrow linewidth for optical clocks. Recent researches to imprint atomic correlation directly demonstrated controllable collective atom-field interactions. Here, we report cavity-mediated coherent single-atom superradiance. Single atoms with predefined correlation traverse a high-Q cavity one by one, emitting photons cooperatively with the atoms already gone through the cavity. Such collective behavior of time-separated atoms is mediated by the long-lived cavity field. As a result, a coherent field is generated in the steady state, whose intensity varies as the square of the number of traversing atoms during the cavity decay time, exhibiting more than ten-fold enhancement from noncollective cases. The correlation among single atoms is prepared with the aligned atomic phase achieved by nanometer-precision position control of atoms with a nanohole-array aperture. The present work deepens our understanding of the collective matter-light interaction and provides an advanced platform for phase-controlled atom-field interactions.
18 pages, 9 figures
References in corpus (8)
- Chiral Quantum Optics
- Reconstruction of non-classical cavity field states with snapshots of their decoherence
- Observation of Dicke Superradiance for Two Artificial Atoms in a Cavity with High Decay Rate
- Observation of single-photon superradiance and the cooperative Lamb shift in an extended sample of cold atoms
- Enhanced Quantum Interface with Collective Ion-Cavity Coupling
- Cavity-Modified Collective Rayleigh Scattering of Two Atoms
- Interference and dynamics of light from a distance-controlled atom pair in an optical cavity
- Generation of an optical Schrödinger-cat-like state in a non-ideal cavity by injecting opposite-phase atomic dipoles
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