The squeezed Kerr oscillator: spectral kissing and phase-flip robustness
arXiv:2209.03934 · doi:10.1103/PhysRevX.14.031040
Abstract
By applying a microwave drive to a specially designed Josephson circuit, we have realized an elementary quantum optics model, the squeezed Kerr oscillator. This model displays, as the squeezing amplitude is increased, a cross-over from a single ground state regime to a doubly-degenerate ground state regime. In the latter case, the ground state manifold is spanned by Schrödinger-cat states, i.e. quantum superpositions of coherent states with opposite phases. For the first time, having resolved up to the tenth excited state in a spectroscopic experiment, we confirm that the proposed emergent static effective Hamiltonian correctly describes the system, despite its driven character. We also find that the lifetime of the coherent state components of the cat states increases in steps as a function of the squeezing amplitude. We interpret the staircase pattern as resulting from pairwise level kissing in the excited state spectrum. Considering the Kerr-cat qubit encoded in this ground state manifold, we achieve for the first time quantum nondemolition readout fidelities greater than 99%, and enhancement of the phase-flip lifetime by more than two orders of magnitude, while retaining universal quantum control. Our experiment illustrates the crucial role of parametric drive Hamiltonian engineering for hardware-efficient quantum computation.
References in corpus (23)
- Quantum fluids of light
- Confining the state of light to a quantum manifold by engineered two-photon loss
- Tools for quantum simulation with ultracold atoms in optical lattices
- Black-box superconducting circuit quantization
- Excited state quantum phase transitions in many-body systems
- Single Particle Tunneling in Strongly Driven Double Well Potentials
- Exact spectrum of the Lipkin-Meshkov-Glick model in the thermodynamic limit and finite-size corrections
- Tuning the Gap of a Superconducting Flux Qubit
- Amplitude Spectroscopy of a Solid-State Artificial Atom
- Photon generation in an electromagnetic cavity with a time-dependent boundary
- Quantum Error Correction with the Gottesman-Kitaev-Preskill Code
- Switching via quantum activation: A parametrically modulated oscillator
- Kerr-free three-wave mixing in superconducting quantum circuits
- Quantum dynamics of a few-photon parametric oscillator
- One hundred second bit-flip time in a two-photon dissipative oscillator
- Aharonov-Bohm effect in the tunnelling of a quantum rotor in a linear Paul trap
- A critical Schrödinger cat qubit
- Tunneling spectroscopy using a probe qubit
- Gradiometric flux qubits with tunable gap
- Two-photon driven Kerr quantum oscillator with multiple spectral degeneracies
- Geometric-phase interference in a Mn_{12} single-molecule magnet with four-fold rotational symmetry
- Two-qubit gate using conditional driving for highly detuned Kerr-nonlinear parametric oscillators
- Spectroscopic estimation of the photon number for superconducting Kerr parametric oscillators
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- A Roadmap for Simulating Chemical Dynamics on a Parametrically Driven Bosonic Quantum Device
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- Symmetrically Threaded Superconducting Quantum Interference Devices As Next Generation Kerr-cat Qubits
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- Dynamic compensation for pump-induced frequency shift in Kerr-cat qubit initialization
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- Residual--coupling suppression and fast two-qubit gate for Kerr-cat qubits based on level-degeneracy engineering
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- Quantum annealing in capacitively coupled Kerr parametric oscillators using frequency-chirped drives
- Andreev spin qubit protected by Franck-Condon blockade
- Systematic Construction of Time-Dependent Hamiltonians for Microwave-Driven Josephson Circuits
- Time correlations from steady-state expectation values
- Degeneracy beyond the parity-symmetry protection in one-dimensional spinless models: The parity-violating Kerr parametric oscillator
- Chaos and quantum regimes in -photon driven, dissipative bosonic chains
- Fundamental Limits to Cat-Code Qubits from Chaos-Assisted Tunneling
- Exact amplitudes of parametric processes in driven Josephson circuits
- Passive quantum error correction of photon loss at breakeven