English

Correlated photon dynamics in dissipative Rydberg media

Quantum Physics 2018-06-18 v2

Abstract

Rydberg blockade physics in optically dense atomic media under the conditions of electromagnetically induced transparency (EIT) leads to strong dissipative interactions between single photons. We introduce a new approach to analyzing this challenging many-body problem in the limit of large optical depth per blockade radius. In our approach, we separate the single-polariton EIT physics from Rydberg-Rydberg interactions in a serialized manner while using a hard-sphere model for the latter, thus capturing the dualistic particle-wave nature of light as it manifests itself in dissipative Rydberg-EIT media. Using this approach, we analyze the saturation behavior of the transmission through one-dimensional Rydberg-EIT media in the regime of non-perturbative dissipative interactions relevant to current experiments. Our model is able to capture the many-body dynamics of bright, coherent pulses through these strongly interacting media. We compare our model with available experimental data in this regime and find good agreement. We also analyze a scheme for generating regular trains of single photons from continuous-wave input and derive its scaling behavior in the presence of imperfect single-photon EIT.

Keywords

Cite

@article{arxiv.1608.06068,
  title  = {Correlated photon dynamics in dissipative Rydberg media},
  author = {Emil Zeuthen and Michael J. Gullans and Mohammad F. Maghrebi and Alexey V. Gorshkov},
  journal= {arXiv preprint arXiv:1608.06068},
  year   = {2018}
}

Comments

Final version. 6 pages, 4 figures (+ Supplemental Material; 7 pages, 3 figures)

R2 v1 2026-06-22T15:25:58.966Z