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Unifying Floquet theory of longitudinal and dispersive readout

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arxiv 2407.03417 v2 pith:3NHUDM5G submitted 2024-07-03 quant-ph cond-mat.mes-hall

classification quant-phcond-mat.mes-hall
keywords longitudinaldispersivereadoutshiftcavitycouplingcurvaturefloquet
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abstract

We devise a Floquet theory of longitudinal and dispersive readout in circuit QED. By studying qubits coupled to cavity photons and driven at the resonance frequency of the cavity $\omega_{\rm r}$, we establish a universal connection between the qubit AC Stark shift and the longitudinal and dispersive coupling to photons. We find that the longitudinal coupling $g_\parallel$ is controlled by the slope of the AC Stark shift as function of the driving strength $A_{\rm q}$, while the dispersive shift $\chi$ depends on its curvature. The two quantities become proportional to each other in the weak drive limit ($A_{\rm q}\rightarrow 0$). Our approach unifies the adiabatic limit ($\omega_{\rm r}\rightarrow 0$) -- where $g_\parallel$ is generated by the static spectrum curvature (or quantum capacitance) -- with the diabatic one, where the static spectrum plays no role. We derive analytical results supported by exact numerical simulations. We apply them to superconducting and spin-hybrid cQED systems, showcasing the flexibility of faster-than-dispersive longitudinal readout.

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Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Optimal Control for Open Quantum System in Circuit Quantum Electrodynamics

    quant-ph 2024-12 conditional novelty 4.0 of 10

    Pontryagin-optimized pulses can move a damped resonator to a target coherent state with lower energy than shortcut-to-adiabatic pulses and provide high readout SNR at large critical photon numbers.

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