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Multimode quantum memory based on atomic frequency combs
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Multimode quantum memory based on atomic frequency combs
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An efficient multi-mode quantum memory is a crucial resource for long-distance quantum communication based on quantum repeaters. We propose a quantum memory based on spectral shaping of an inhomogeneously broadened optical transition into an atomic frequency comb (AFC). The spectral width of the AFC allows efficient storage of multiple temporal modes, without the need to increase the absorption depth of the storage material, in contrast to previously known quantum memories. Efficient readout is possible thanks to rephasing of the atomic dipoles due to the AFC structure. Long-time storage and on-demand readout is achieved by use of spin-states in a lambda-type configuration. We show that an AFC quantum memory realized in solids doped with rare-earth-metal ions could store hundreds of modes or more with close to unit efficiency, for material parameters achievable today.
Forward citations
Cited by 2 Pith papers
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Programmable cavity-enhanced telecom quantum memory in thin-film lithium niobate
Demonstrates 23.3% efficient 100-ns storage of telecom photons in a 167Er-doped thin-film LN microring with 277 s AFC lifetime, 20 MHz programmable addressing, and >11-sigma entanglement witness violation.
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Programmable cavity-enhanced telecom quantum memory in thin-film lithium niobate
An erbium-167-doped lithium-niobate microring stores telecom photons at 23.3% on-chip efficiency, routes them electro-optically at 20 MHz, and preserves time-energy entanglement with an 11σ witness violation.
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