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Realizing discrete time crystal in an one-dimensional superconducting qubit chain

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arxiv 2108.00942 v1 pith:A4EC67JF submitted 2021-08-02 quant-ph cond-mat.dis-nn

classification quant-phcond-mat.dis-nn
keywords discretephasequantumsimulationsuperconductingtimebrokenchain
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Floquet engineering, i.e. driving the system with periodic Hamiltonians, not only provides great flexibility in analog quantum simulation, but also supports phase structures of great richness. It has been proposed that Floquet systems can support a discrete time-translation symmetry (TTS) broken phase, dubbed the discrete time crystal (DTC). This proposal, as well as the exotic phase, has attracted tremendous interest among the community of quantum simulation. Here we report the observation of the DTC in an one-dimensional superconducting qubit chain. We experimentally realize long-time stroboscopic quantum dynamics of a periodically driven spin system consisting of 8 transmon qubits, and obtain a lifetime of the DTC order limited by the coherence time of the underlying physical platform. We also explore the crossover between the discrete TTS broken and unbroken phases via various physical signatures. Our work extends the usage of superconducting circuit systems in quantum simulation of many-body physics, and provides an experimental tool for investigating non-equilibrium dynamics and phase structures.

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Cited by 2 Pith papers

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  1. Fourier Neural Operators for Time-Periodic Quantum Systems: Learning Floquet Hamiltonians, Observable Dynamics, and Operator Growth

    quant-ph 2025-09 conditional novelty 6.0 of 10

    FNOs learn three maps for time-periodic spin chains (Floquet Hamiltonian, local observables, operator growth) with high accuracy, zero-shot transfer across time grids and driving frequencies, and extrapolation beyond ...

  2. Circuit structure-preserving error mitigation for High-Fidelity Quantum Simulations

    quant-ph 2025-05 conditional novelty 5.0 of 10

    A structure-preserving error mitigation technique that inverts a noise matrix measured from an identity-equivalent circuit is demonstrated on variational simulations of a non-Hermitian Ising chain, showing improved ag...

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