Single spontaneous photon as a coherent beamsplitter for an atomic matterwave
arXiv:1012.4704 · doi:10.1038/NPHYS1961
Abstract
In spontaneous emission an atom in an excited state undergoes a transition to the ground state and emits a single photon. Associated with the emission is a change of the atomic momentum due to photon recoil. Photon emission can be modified close to surfaces and in cavities. For an ion, localized in front of a mirror, coherence of the emitted resonance fluorescence has been reported. In free space experiments demonstrated that spontaneous emission destroys motional coherence. Here we report on motional coherence created by a single spontaneous emission event close to a mirror surface. The coherence in the free atomic motion is verified by atom interferometry. The photon can be regarded as a beamsplitter for an atomic matterwave and consequently our experiment extends the original recoiling slit Gedanken experiment by Einstein to the case where the slit is in a robust coherent superposition of the two recoils associated with the two paths of the quanta.
main text: 5 pages, 4 figure; supplementary information: 8 pages, 1 figure
References in corpus (5)
- Atom Interferometers
- Self-cooling of a micro-mirror by radiation pressure
- Cooling of a mirror by radiation pressure
- From Single to Multiple-Photon Decoherence in an Atom Interferometer
- Sub-wavelength resolution of optical fields probed by single trapped ions: Interference, phase modulation, and which-way information
Cited by in corpus (7)
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- Threshold in quantum correlated interference for a particle interacting with two scatterers
- Proposal for a Bell Test with Entangled Atoms of Different Mass