Control of spatial correlations between Rydberg excitations using rotary echo
arXiv:1607.01398 · doi:10.1103/PhysRevLett.118.133401
Abstract
We manipulate correlations between Rydberg excitations in cold atom samples using a rotary-echo technique. The correlations are due to interactions between the Rydberg atoms. In the rotary-echo excitation sequence, the phase of the excitation pulse is flipped at a selected time during the pulse. We measure the resultant change in the spatial pair correlation function of the excitations via direct position-sensitive atom imaging. For zero detuning of the lasers from the interaction-free Rydberg-excitation resonance, the pair-correlation value at the most likely nearest-neighbor Rydberg-atom distance is substantially enhanced when the phase is flipped at the middle of the excitation pulse. In this case, the rotary echo eliminates most uncorrelated (un-paired) atoms, leaving an abundance of correlated atom pairs at the end of the sequence. In off-resonant cases, a complementary behavior is observed. We further characterize the effect of the rotary-echo excitation sequence on the excitation-number statistics of the atom sample.
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Cited by in corpus (7)
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- Quantum dynamics of long-range interacting systems using the positive-P and gauge-P representations
- Modulation spectroscopy of Rydberg atoms in an optical lattice
- Quantum state engineering by periodical two-step modulation in atomic system
- Spatial bunching of same-charge polarization singularities in two-dimensional random vector waves
- Coherent excitation of three-atom entangled states near a two-body Förster resonance