Optimization of the resonator-induced phase gate for superconducting qubits
arXiv:2110.01724 · doi:10.1103/PhysRevA.105.022607
Abstract
The resonator-induced phase gate is a two-qubit operation in which driving a bus resonator induces a state-dependent phase shift on the qubits equivalent to an effective interaction. In principle, the dispersive nature of the gate offers flexibility for qubit parameters. However, the drive can cause resonator and qubit leakage, the physics of which cannot be fully captured using either the existing Jaynes-Cummings or Kerr models. In this paper, we adopt an ab-initio model based on Josephson nonlinearity for transmon qubits. The ab-initio analysis agrees well with the Kerr model in terms of capturing the effective interaction in the weak-drive dispersive regime. In addition, however, it reveals numerous leakage transitions involving high-excitation qubit states. We analyze the physics behind such novel leakage channels, demonstrate the connection with specific qubits-resonator frequency collisions, and lay out a plan towards device parameter optimization. We show this type of leakage can be substantially suppressed using very weakly anharmonic transmons. In particular, weaker qubit anharmonicity mitigates both collision density and leakage amplitude, while larger qubit frequency moves the collisions to occur only at large anharmonicity not relevant to experiment. Our work is broadly applicable to the physics of weakly anharmonic transmon qubits coupled to linear resonators. In particular, our analysis confirms and generalizes the measurement-induced state transitions noted in Sank et al. (Phys. Rev. Lett. 117, 190503) and lays the groundwork for both strong-drive resonator-induced phase gate implementation and strong-drive dispersive qubit measurement.
34 pages, 10 appendices, 18 figures, 3 tables
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- Dynamics of Transmon Ionization
- Measurement-Induced Transmon Ionization
- Enhancing Dispersive Readout of Superconducting Qubits Through Dynamic Control of the Dispersive Shift: Experiment and Theory
- Photon-noise-tolerant dispersive readout of a superconducting qubit using a nonlinear Purcell filter
- Floquet Analysis of Frequency Collisions
- Fast ZZ-Free Entangling Gates for Superconducting Qubits Assisted by a Driven Resonator
- Balanced cross-Kerr coupling for superconducting qubit readout
- Dispersive Qubit Readout with Intrinsic Resonator Reset
- Scalable Low-overhead Superconducting Non-local Coupler with Exponentially Enhanced Connectivity
- Review of Superconducting Qubit Devices and Their Large-Scale Integration
- Time-dependent Schrieffer-Wolff-Lindblad Perturbation Theory: measurement-induced dephasing and second-order Stark shift in dispersive readout
- Quasiparticle-induced decoherence of a driven superconducting qubit