Physical Review Letters · 2016 · 200 citations · 28 references
EngineeringCavity QedQuantum MeasurementSuperconducting QubitQuantum ComputingQuantum SystemsQuantum State MeasurementSuperconductivityQuantum EntanglementSuperconducting DevicesQuantum SciencePhotonicsRotating Wave ApproximationPhysicsMeasurement-induced State TransitionsQuantum DeviceQuantum InformationCoupled Harmonic ResonatorNatural SciencesApplied PhysicsQubit SystemsQuantum Superconductivity
Superconducting qubits use dispersive coupling to a resonator for measurement, but high photon numbers can induce state transitions. The study investigates photon‑number‑induced transitions that push the qubit beyond its two‑level subspace and exhibit resonant behavior, and develops a theory based on level crossings in the Jaynes‑Cummings ladder. The mechanism involves level crossings in the Jaynes‑Cummings ladder, with transitions driven by normally neglected Hamiltonian terms, and is validated by measuring resonator photon occupation while varying qubit–resonator detuning. The findings show that photon‑number‑induced transitions push the qubit beyond its two‑level subspace, exhibit resonant behavior, are driven mainly by a term arising from an unexpected broken symmetry in the qubit potential, and are confirmed by resonator photon‑occupation measurements.
Many superconducting qubit systems use the dispersive interaction between the qubit and a coupled harmonic resonator to perform quantum state measurement. Previous works have found that such measurements can induce state transitions in the qubit if the number of photons in the resonator is too high. We investigate these transitions and find that they can push the qubit out of the two-level subspace, and that they show resonant behavior as a function of photon number. We develop a theory for these observations based on level crossings within the Jaynes-Cummings ladder, with transitions mediated by terms in the Hamiltonian that are typically ignored by the rotating wave approximation. We find that the most important of these terms comes from an unexpected broken symmetry in the qubit potential. We confirm the theory by measuring the photon occupation of the resonator when transitions occur while varying the detuning between the qubit and resonator.
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