English

A spectral hole memory for light at the single photon level

Quantum Physics 2016-05-04 v2

Abstract

We demonstrate a solid state spin-wave optical memory based on stopped light in a spectral hole. A long lived narrow spectral hole is created by optical pumping in the inhomogeneous absorption profile of a Pr3+^{3+}:Y2_2SiO5_5 crystal. Optical pulses sent through the spectral hole experience a strong reduction of their group velocity and are spatially compressed in the crystal. A short Raman pulse transfers the optical excitation to the spin state before the light pulse exits the crystal, effectively stopping the light. After a controllable delay, a second Raman pulse is sent, which leads to the emission of the stored photons. We reach storage and retrieval efficiencies for bright pulses of up to 39%39\,\% in a 5mm5 \,\mathrm{mm}-long crystal. We also show that our device works at the single photon level by storing and retrieving 3μs3\,\mathrm{\mu s}-long weak coherent pulses with efficiencies up to 31%31\,\%, demonstrating the most efficient spin-wave solid state optical memory at the single-photon level so far. We reach an unconditional noise level of (9±1)×103(9\pm1)\times 10^{-3} photons per pulse in a detection window of 4μs4\,\mathrm{\mu s} leading to a signal-to-noise ratio of 33±433 \pm 4 for an average input photon number of 1, making our device promising for long-lived storage of non-classical light.

Keywords

Cite

@article{arxiv.1509.03145,
  title  = {A spectral hole memory for light at the single photon level},
  author = {Kutlu Kutluer and María Florencia Pascual-Winter and Julian Dajczgewand and Partick M. Ledingham and Margherita Mazzera and Thierry Chanelière and Hugues de Riedmatten},
  journal= {arXiv preprint arXiv:1509.03145},
  year   = {2016}
}

Comments

5 pages, 4 figures

R2 v1 2026-06-22T10:53:42.572Z