Single ultracold rubidium atom trapped in the evanescent field of an integrated silicon-nitride microring resonator, achieving single-atom cooperativity exceeding unity.
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4 Pith papers cite this work. Polarity classification is still indexing.
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quant-ph 4years
2026 4verdicts
UNVERDICTED 4roles
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Phase engineering in waveguide QED enables unidirectional remote charging of quantum batteries with independent control of nonreciprocity and storage efficiency across four emitter-waveguide configurations.
Proposes realizing all-optical neural networks via phase-tunable interference, bad-cavity integration, and transient Rabi dynamics in waveguide QED, with simulations showing high accuracy on MNIST and object recognition.
A modified input-output approach with an added low-Q cavity channel models giant-atom electromagnetic scattering beyond the dipole approximation, explaining generic Fano-type spectra and extracting dissipation and coupling parameters.
citing papers explorer
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Single-atom trapping in the evanescent field of an integrated photonic resonator
Single ultracold rubidium atom trapped in the evanescent field of an integrated silicon-nitride microring resonator, achieving single-atom cooperativity exceeding unity.
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Phase-tunable remote nonreciprocal charging in waveguide QED
Phase engineering in waveguide QED enables unidirectional remote charging of quantum batteries with independent control of nonreciprocity and storage efficiency across four emitter-waveguide configurations.
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Optical Neural Networks from Coherent Transient Dynamics in Waveguide QED
Proposes realizing all-optical neural networks via phase-tunable interference, bad-cavity integration, and transient Rabi dynamics in waveguide QED, with simulations showing high accuracy on MNIST and object recognition.
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An input-output approach for giant atom scatterings beyond the dipole approximation
A modified input-output approach with an added low-Q cavity channel models giant-atom electromagnetic scattering beyond the dipole approximation, explaining generic Fano-type spectra and extracting dissipation and coupling parameters.