Effects of quasiparticle tunneling in a circuit-QED realization of a strongly driven two-level system
arXiv:1306.4200 · doi:10.1088/0953-4075/46/22/224019
Abstract
We experimentally and theoretically study the frequency shift of a driven cavity coupled to a superconducting charge qubit. In addition to previous studies, we here also consider drive strengths large enough to energetically allow for quasiparticle creation. Quasiparticle tunneling leads to the inclusion of more than two charge states in the dynamics. To explain the observed effects, we develop a master equation for the microwave dressed charge states, including quasiparticle tunneling. A bimodal behavior of the frequency shift as a function of gate voltage can be used for sensitive charge detection. However, at weak drives the charge sensitivity is significantly reduced by non-equilibrium quasiparticles, which induce transitions to a non-sensitive state. Unexpectedly, at high enough drives, quasiparticle tunneling enables a very fast relaxation channel to the sensitive state. In this regime, the charge sensitivity is thus robust against externally injected quasiparticles and the desired dynamics prevail over a broad range of temperatures. We find very good agreement between theory and experiment over a wide range of drive strengths and temperatures.
25 pages, 7 figures
References in corpus (14)
- Controlling the spontaneous emission of a superconducting transmon qubit
- Quasiparticle relaxation of superconducting qubits in the presence of flux
- Coherence times of dressed states of a superconducting qubit under extreme driving
- Measurements of Quasiparticle Tunneling Dynamics in a Bandgap-Engineered Transmon Qubit
- Kinetics of non-equilibrium quasiparticle tunneling in superconducting charge qubits
- Energy decay and frequency shift of a superconducting qubit from non-equilibrium quasiparticles
- Inelastic Microwave Photon Scattering off a Quantum Impurity in a Josephson-Junction Array
- Temperature square dependence of the low frequency 1/f charge noise in the Josephson junction qubits
- Quasiparticle decay rate of Josephson charge qubit oscillations
- Fragility of multi-junction flux qubits against quasiparticle tunneling
- A near-field scanning microwave microscope based on a superconducting resonator for low power measurements
- Slow noise processes in superconducting resonators
- Effect of decoherence on resonant Cooper-pair tunneling in a voltage-biased single-Cooper-pair transistor
- Quantum Zeno effect in the Cooper-pair transport through a double-island Josephson system
Cited by in corpus (4)
- Microwave photonics with superconducting quantum circuits
- Nonadiabatic Landau-Zener-Stückelberg-Majorana transitions, dynamics, and interference
- Creating photon-number squeezed strong microwave fields by a Cooper-pair injection laser
- Theory of quasiparticle generation by microwave drives in superconducting qubits