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Site-selective cavity readout and classical error correction of a 5-bit atomic register

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arxiv 2408.15329 v2 pith:GIV3VMYA submitted 2024-08-27 quant-ph physics.atom-ph

classification quant-phphysics.atom-ph
keywords readoutarrayerroratomiccavityclassicalcorrectiondemonstrate
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Optical cavities can provide fast and non-destructive readout of individual atomic qubits; however, scaling up to many qubits remains a challenge. Using locally addressed excited-state Stark shifts to tune atoms out of resonance, we realize site-selective hyperfine-state cavity readout across a 10-site array. The state discrimination fidelity is 0.994(1) for one atom and 0.989(2) averaged over the entire array at a survival probability of 0.975(1). To further speed up array readout, we demonstrate adaptive search strategies utilizing global/subset checks. Finally, we demonstrate repeated rounds of classical error correction, showing exponential suppression of logical error and extending logical memory fivefold beyond the single-bit idling lifetime.

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Cited by 2 Pith papers

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  2. Optically accessible high-finesse millimeter-wave resonator for cavity quantum electrodynamics with atom arrays

    quant-ph 2025-06 accept novelty 6.0 of 10

    A superconducting millimeter-wave cavity with finesse 5.8×10^7 and numerical aperture 0.56 provides the optical access needed for atom-array cavity QED in the strong-coupling regime.

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