Many-body Signatures of Collective Decay in Atomic Chains
- URL: http://arxiv.org/abs/2008.08139v2
- Date: Wed, 23 Dec 2020 22:11:32 GMT
- Title: Many-body Signatures of Collective Decay in Atomic Chains
- Authors: Stuart J. Masson, Igor Ferrier-Barbut, Luis A. Orozco, Antoine
Browaeys, Ana Asenjo-Garcia
- Abstract summary: We investigate the role of finite interatomic separation on correlated decay in mesoscopic chains.
We show that the superradiant burst survives at small distances, despite Hamiltonian dipole-dipole interactions.
We calculate the two-photon correlation function and demonstrate that emission is correlated and directional, as well as sensitive to small changes in the interatomic distance.
- Score: 0.0
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: Fully inverted atoms placed at exactly the same location synchronize as they
deexcite, and light is emitted in a burst (known as "Dicke's superradiance").
We investigate the role of finite interatomic separation on correlated decay in
mesoscopic chains, and provide an understanding in terms of collective jump
operators. We show that the superradiant burst survives at small distances,
despite Hamiltonian dipole-dipole interactions. However, for larger
separations, competition between different jump operators leads to dephasing,
suppressing superradiance. Collective effects are still significant for arrays
with lattice constants of the order of a wavelength, and lead to a photon
emission rate that decays nonexponentially in time. We calculate the two-photon
correlation function and demonstrate that emission is correlated and
directional, as well as sensitive to small changes in the interatomic distance.
These features can be measured in current experimental setups, and are robust
to realistic imperfections.
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