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Proposal for a long-lived quantum memory using matter-wave optics with Bose-Einstein condensates in microgravity

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arxiv 2210.13859 v1 pith:LMGTWQ24 submitted 2022-10-25 physics.atom-ph quant-ph

classification physics.atom-phquant-ph
keywords memoryquantumbose-einsteincondensatesmicrogravitydecoherenceeffectsleading
verification ladder T0 review T1 audit T2 compute T3 formal
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abstract

Bose-Einstein condensates are a promising platform for optical quantum memories, but suffer from several decoherence mechanisms, leading to short memory lifetimes. While some of these decoherence effects can be mitigated by conventional methods, density dependent atom-atom collisions ultimately set the upper limit of quantum memory lifetime to s-timescales in trapped Bose-Einstein condensates. We propose a new quantum memory technique that utilizes microgravity as a resource to minimize such density-dependent effects. We show that by using optical atom lenses to collimate and refocus the freely expanding atomic ensembles, in an ideal environment, the expected memory lifetime is only limited by the quality of the background vacuum. We anticipate that this method can be experimentally demonstrated in Earth-bound microgravity platforms or space missions, eventually leading to storage times of minutes and unprecedented time-bandwidth products of {$10^{10}$}

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