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Cavity QED in a High NA Resonator

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arxiv 2407.04784 v1 pith:ANUP2J6P submitted 2024-07-05 physics.atom-ph cond-mat.quant-gasquant-ph

classification physics.atom-phcond-mat.quant-gasquant-ph
keywords cavityatomopticalresonatorabsorptioncouplingprobabilityprovides
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From fundamental studies of light-matter interaction to applications in quantum networking and sensing, cavity quantum electrodynamics (QED) provides a platform-crossing toolbox to control interactions between atoms and photons. The coherence of such interactions is determined by the product of the single-pass atomic absorption and the number of photon round-trips. Reducing the cavity loss has enabled resonators supporting nearly 1-million optical roundtrips at the expense of severely limited optical material choices and increased alignment sensitivity. The single-pass absorption probability can be increased through the use of near-concentric, fiber or nanophotonic cavities, which reduce the mode waists at the expense of constrained optical access and exposure to surface fields. Here we present a new high numerical-aperture, lens-based resonator that pushes the single-atom-single-photon absorption probability per round trip close to its fundamental limit by reducing the mode size at the atom below a micron while keeping the atom mm-to-cm away from all optics. This resonator provides strong light-matter coupling in a cavity where the light circulates only ~ 10 times. We load a single 87Rb atom into such a cavity, observe strong coupling, demonstrate cavity-enhanced atom detection with imaging fidelity of 99.55(6) percent and survival probability of 99.89(4) percent in 130 microseconds, and leverage this new platform for a time-resolved exploration of cavity cooling. The resonator's loss-resilience paves the way to coupling of atoms to nonlinear and adaptive optical elements and provides a minimally invasive route to readout of defect centers. Introduction of intra-cavity imaging systems will enable the creation of cavity arrays compatible with Rydberg atom array computing technologies, vastly expanding the applicability of the cavity QED toolbox.

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Cited by 2 Pith papers

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  1. Programmable few-atom Bragg scattering and ground-state cooling in a cavity

    quant-ph 2025-08 unverdicted novelty 6.0 of 10

    EgoCross, a cross-domain egocentric QA benchmark, shows current multimodal LLMs drop sharply when videos come from surgery, industry, extreme sports, or animal perspectives.

  2. Ultrafast high-fidelity state readout of single neutral atom

    quant-ph 2024-12 conditional novelty 6.0 of 10

    A single rubidium atom in a fiber microcavity was read out with 99.1% fidelity in 200 ns and 99.985% fidelity in 9 μs, with survival above 99.7%.

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