Concepedia

Publication | Open Access

Coherent Optical Memory with High Storage Efficiency and Large Fractional Delay

198

Citations

33

References

2013

Year

TLDR

A high‑storage efficiency and long‑lived quantum memory for photons is an essential component in long‑distance quantum communication and optical quantum computation. Our work significantly advances the technology of electromagnetically induced transparency‑based optical memory and may find practical applications in long‑distance quantum communication and optical quantum computation. We achieved a 78 % storage efficiency of light pulses in a cold atomic medium via electromagnetically induced transparency, and at 50 % efficiency obtained a record fractional delay of 74; the recalled pulses maintained >90 % classical fidelity and phase coherence, indicating suitability for single‑photon applications.

Abstract

A high-storage efficiency and long-lived quantum memory for photons is an essential component in long-distance quantum communication and optical quantum computation. Here, we report a 78% storage efficiency of light pulses in a cold atomic medium based on the effect of electromagnetically induced transparency. At 50% storage efficiency, we obtain a fractional delay of 74, which is the best up-to-date record. The classical fidelity of the recalled pulse is better than 90% and nearly independent of the storage time, as confirmed by the direct measurement of phase evolution of the output light pulse with a beat-note interferometer. Such excellent phase coherence between the stored and recalled light pulses suggests that the current result may be readily applied to single photon wave packets. Our work significantly advances the technology of electromagnetically induced transparency-based optical memory and may find practical applications in long-distance quantum communication and optical quantum computation.

References

YearCitations

Page 1