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High-fidelity remote entanglement of trapped atoms mediated by time-bin photons

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arxiv 2406.01761 v1 pith:KIZUVKLF submitted 2024-06-03 quant-ph physics.app-phphysics.atom-ph

classification quant-phphysics.app-phphysics.atom-ph
keywords quantumentanglementmemoriesachieveatomicerrorhigh-fidelitymediated
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Photonic interconnects between quantum processing nodes are likely the only way to achieve large-scale quantum computers and networks. The bottleneck in such an architecture is the interface between well-isolated quantum memories and flying photons. We establish high-fidelity entanglement between remotely separated trapped atomic qubit memories, mediated by photonic qubits stored in the timing of their pulses. Such time-bin encoding removes sensitivity to polarization errors, enables long-distance quantum communication, and is extensible to quantum memories with more than two states. Using a measurement-based error detection process and suppressing a fundamental source of error due to atomic recoil, we achieve an entanglement fidelity of 97% and show that fidelities beyond 99.9% are feasible.

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  1. Design Tradeoffs in Photonically Linked Qubit Networks

    quant-ph 2025-06 conditional novelty 5.0 of 10

    A modeling study concludes that dipole-induced-transparency and controlled-phase-flip protocols in strong-coupling cavities can outperform two-photon entanglement schemes for trapped-ion networks, under optimistic but...

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