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Floquet Prethermal Phase Protected by U(1) Symmetry on a Superconducting Quantum Processor

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arxiv 2107.07311 v1 pith:SITAKS4W submitted 2021-07-15 quant-ph

Floquet Prethermal Phase Protected by U(1) Symmetry on a Superconducting Quantum Processor

classification quant-ph
keywords quantumphasedynamicalphasessystemsdigital-analogfloquetprethermal
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Periodically driven systems, or Floquet systems, exhibit many novel dynamics and interesting out-of-equilibrium phases of matter. Those phases arising with the quantum systems' symmetries, such as global $U(1)$ symmetry, can even show dynamical stability with symmetry-protection. Here we experimentally demonstrate a $U(1)$ symmetry-protected prethermal phase, via performing a digital-analog quantum simulation on a superconducting quantum processor. The dynamical stability of this phase is revealed by its robustness against external perturbations. We also find that the spin glass order parameter in this phase is stabilized by the interaction between the spins. Our work reveals a promising prospect in discovering emergent quantum dynamical phases with digital-analog quantum simulators.

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