English

Single-photon-level light storage in cold atoms using the Autler-Townes splitting protocol

Quantum Physics 2019-09-18 v1 Applied Physics Atomic Physics Optics

Abstract

Broadband spin-photon interfaces for long-lived storage of photonic quantum states are key elements for quantum information technologies. Yet, reliable operation of such memories in the quantum regime is challenging due to photonic noise arising from technical and/or fundamental limitations in the storage-and-recall processes controlled by strong electromagnetic fields. Here, we experimentally implement a single-photon-level spin-wave memory in a laser-cooled Rubidium gas, based on the recently proposed Autler-Townes splitting (ATS) protocol. We demonstrate storage of 20-ns-long laser pulses, each containing an average of 0.1 photons, for 200 ns with an efficiency of 12.5%12.5\% and signal-to-noise ratio above 30. Notably, the robustness of ATS spin-wave memory against motional dephasing allows for an all-spatial filtering of the control-field noise, yielding an ultra-low unconditional noise probability of 3.3×1043.3\times10^{-4}, without the complexity of spectral filtering. These results highlight that broadband ATS memory in ultracold atoms is a preeminent option for storing quantum light.

Keywords

Cite

@article{arxiv.1905.05856,
  title  = {Single-photon-level light storage in cold atoms using the Autler-Townes splitting protocol},
  author = {Erhan Saglamyurek and Taras Hrushevskyi and Logan Cooke and Anindya Rastogi and Lindsay J. LeBlanc},
  journal= {arXiv preprint arXiv:1905.05856},
  year   = {2019}
}

Comments

6 pages, 4 figures

R2 v1 2026-06-23T09:06:40.616Z