Suppressing chaos with mixed superconducting qubit devices
arXiv:2410.18543 · doi:10.1103/pl85-jd9y
Abstract
In quantum information processing, a tension between two different tasks occurs: while qubits' states can be preserved by isolating them, quantum gates can be realized only through qubit-qubit interactions. In arrays of qubits, weak coupling leads to states being spatially localized and strong coupling to delocalized states. Here, we study the average energy level spacing and the relative entropy of the distribution of the level spacings (Kullback-Leibler divergence from Poisson and Gaussian Orthogonal Ensemble) to analyze the crossover between localized and delocalized (chaotic) regimes in linear arrays of superconducting qubits. We consider both transmons as well as capacitively shunted flux qubits, which enables us to tune the qubit anharmonicity. Arrays with uniform anharmonicity, comprising only transmons or flux qubits, display remarkably similar dependencies of level statistics on the coupling strength. In systems with alternating anharmonicity, for typical disorder in the qubit frequencies the localized regime is found to be more resilient to the increase in qubit-qubit coupling strength in comparison to arrays with a single qubit type. Our results, which we also confirm using generalized Bose-Hubbard models, support designing devices that incorporate different qubit types to achieve higher performances.
13 pages, 11 figures
References in corpus (38)
- Charge insensitive qubit design derived from the Cooper pair box
- From Quantum Chaos and Eigenstate Thermalization to Statistical Mechanics and Thermodynamics
- Circuit Quantum Electrodynamics
- A Quantum Engineer's Guide to Superconducting Qubits
- Localization of interacting fermions at high temperature
- Many-body localization, thermalization, and entanglement
- Superconducting Qubits: Current State of Play
- The distribution of the ratio of consecutive level spacings in random matrix ensembles
- The Flux Qubit Revisited to Enhance Coherence and Reproducibility
- Spectral signatures of many-body localization with interacting photons
- Procedure for systematically tuning up crosstalk in the cross resonance gate
- Tools for quantum simulation with ultracold atoms in optical lattices
- Repeated Quantum Error Detection in a Surface Code
- Quantum walks on a programmable two-dimensional 62-qubit superconducting processor
- Emulating many-body localization with a superconducting quantum processor
- Low-decoherence flux qubit
- Effective Hamiltonian models of the cross-resonance gate
- Three Qubit Randomized Benchmarking
- Probing quantum information propagation with out-of-time-ordered correlators
- High coherence hybrid superconducting qubit
- Suppression of Unwanted Interactions in a Hybrid Two-Qubit System
- High-contrast ZZ interaction using superconducting qubits with opposite-sign anharmonicity
- Transmon platform for quantum computing challenged by chaotic fluctuations
- Cooling and Autonomous Feedback in a Bose-Hubbard chain with Attractive Interactions
- Quantum transport and localization in 1d and 2d tight-binding lattices
- Photon transport in a Bose-Hubbard chain of superconducting artificial atoms
- Probing many-body localization phase transition with superconducting circuits
- Experimental characterization of quantum many-body localization transition
- Distribution of the Ratio of Consecutive Level Spacings for Different Symmetries and Degrees of Chaos
- Probing entanglement across the energy spectrum of a hard-core Bose-Hubbard lattice
- Beyond hard-core bosons in transmon arrays
- The phases of the disordered Bose-Hubbard model with attractive interactions
- Uncovering Local Integrability in Quantum Many-Body Dynamics
- Recent progress on quantum simulations of non-standard Bose-Hubbard models
- Tunable superconducting flux qubits with long coherence times
- Classical Chaos in Quantum Computers
- Soliton versus single photon quantum dynamics in arrays of superconducting qubits
- Perturbative Analysis of Quasi-periodic Patterning of Transmon Quantum Computers: Enhancement of Many-Body Localization