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Coherence time of over a second in a telecom-compatible quantum memory storage material

Authors :
Rančić, Miloš
Hedges, Morgan P.
Ahlefeldt, Rose L.
Sellars, Matthew J.
Source :
Nature Physics; January 2018, Vol. 14 Issue: 1 p50-54, 5p
Publication Year :
2018

Abstract

Quantum memories for light will be essential elements in future long-range quantum communication networks. These memories operate by reversibly mapping the quantum state of light onto the quantum transitions of a material system. For networks, the quantum coherence times of these transitions must be long compared to the network transmission times, approximately 100 ms for a global communication network. Due to a lack of a suitable storage material, a quantum memory that operates in the 1,550 nm optical fibre communication band with a storage time greater than 1 μs has not been demonstrated. Here we describe the spin dynamics of 167Er3+: Y2SiO5in a high magnetic field and demonstrate that this material has the characteristics for a practical quantum memory in the 1,550 nm communication band. We observe a hyperfine coherence time of 1.3 s. We also demonstrate efficient spin pumping of the entire ensemble into a single hyperfine state, a requirement for broadband spin-wave storage. With an absorption of 70 dB cm−1at 1,538 nm and Λ transitions enabling spin-wave storage, this material is the first candidate identified for an efficient, broadband quantum memory at telecommunication wavelengths.

Details

Language :
English
ISSN :
17452473 and 17452481
Volume :
14
Issue :
1
Database :
Supplemental Index
Journal :
Nature Physics
Publication Type :
Periodical
Accession number :
ejs44393320
Full Text :
https://doi.org/10.1038/nphys4254