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A Frequency-Multiplexed Coherent Electro-Optic Memory in Rare Earth Doped Nanoparticles

Quantum Physics 2020-12-02 v1

Abstract

Quantum memories for light are essential components in quantum technologies like long-distance quantum communication and distributed quantum computing. Recent studies have shown that long optical and spin coherence lifetimes can be observed in rare earth doped nanoparticles, opening exciting possibilities over bulk materials e.g. for enhancing coupling to light and other quantum systems, and material design. Here, we report on coherent light storage in Eu3+^{3+}:Y2_2O3_3 nanoparticles using the Stark Echo Modulation Memory (SEMM) quantum protocol. We first measure a nearly constant Stark coefficient of 50 kHz/(V/cm) across a bandwidth of 15 GHz, which is promising for broadband operation. Storage of light using SEMM is then demonstrated for times up to 40 μ\mus. Pulses with two different frequencies are also stored, confirming frequency-multiplexing capability, and are used to demonstrate the memory high phase fidelity.

Keywords

Cite

@article{arxiv.2006.09847,
  title  = {A Frequency-Multiplexed Coherent Electro-Optic Memory in Rare Earth Doped Nanoparticles},
  author = {Alexandre Fossati and Shuping Liu and Jenny Karlsson and Akio Ikesue and Alexandre Tallaire and Alban Ferrier and Diana Serrano and Philippe Goldner},
  journal= {arXiv preprint arXiv:2006.09847},
  year   = {2020}
}

Comments

20 pages, 5 figures

R2 v1 2026-06-23T16:24:13.020Z