Optical investigations of coherence and relaxation dynamics of a thulium-doped yttrium gallium garnet crystal at sub-kelvin temperatures for optical quantum memory

A. Das, M. Falamarzi Askarani, J.H. Davidson, Neil Sinclair, J.A. Slater, S. Marzban, Daniel Oblak, Charles W. Thiel, Rufus L. Cone, W. Tittel*

*Corresponding author for this work

Research output: Contribution to journalArticleScientificpeer-review

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Abstract

Rare-earth ion-doped crystals are of great interest for quantum memories, a central component in future quantum repeaters. To assess the promise of 1 % Tm 3+-doped yttrium gallium garnet (Tm:YGG), we report measurements of optical coherence and energy-level lifetimes of its 3H 6 ↔ 3 H 4 transition at a temperature of around 500 mK and various magnetic fields. Using spectral hole burning (SHB), we find hyperfine ground-level (Zeeman level) lifetimes of several minutes at magnetic fields of less than 1000 G. We also measure coherence time exceeding one millisecond using two-pulse photon echoes. Three-pulse photon echo and SHB measurements reveal that due to spectral diffusion, the effective coherence time reduces to a few µs over a timescale of around two hundred seconds. Finally, temporal and frequency-multiplexed storage of optical pulses using the atomic frequency comb protocol is demonstrated. Our results suggest Tm:YGG to be promising for multiplexed photonic quantum memory for quantum repeaters.

Original languageEnglish
Article number035202
Number of pages11
JournalMaterials for Quantum Technology
Volume4
Issue number3
DOIs
Publication statusPublished - 2024

Keywords

  • quantum memory
  • rare-earth ion-doped crystals
  • thulium-doped crystal
  • multiplexing
  • spectroscopy
  • quantum repeater

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