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Unveiling prethermal two-dimensional discrete time quasicrystals on a digital quantum computer

ORAL

Abstract

In periodically driven (Floquet) systems, evolution typically results in an infinite-temperature thermal state due to continuous energy absorption over time. However, before reaching thermal equilibrium, such systems may transiently pass through a meta-stable state known as a prethermal state. This prethermal state can exhibit phenomena not commonly observed in equilibrium, such as prethermal discrete time crystals (DTCs), making it an intriguing platform for exploring out-of-equilibrium dynamics. Here, we investigate the relaxation dynamics of initially prepared product states under periodic driving in a kicked Ising model using the IBM Quantum Heron processor, comprising 133 superconducting qubits arranged on a heavy-hexagonal lattice, over up to 100 time steps [1]. We identify the presence of a prethermal regime characterised by magnetisation measurements oscillating at twice the period of the Floquet cycle and demonstrate its robustness against perturbations to the transverse field. Our results provide evidence supporting the realisation of a period-doubling DTC in a two-dimensional system. Moreover, we discover that the longitudinal field induces additional amplitude modulations in the magnetisation with a period incommensurate with the driving period, leading to the emergence of prethermal discrete time quasicrystals (DTQCs). These observations are further validated through comparison with tensor-network and state-vector simulations.

Publication: [1] K. Shinjo, K. Seki, T. Shirakawa, R. Y. Sun, and S. Yunoki, arXiv:2403.16718.

Presenters

  • Kazuya Shinjo

    RIKEN

Authors

  • Kazuya Shinjo

    RIKEN

  • Kazuhiro Seki

    RIKEN

  • Tomonori Shirakawa

    RIKEN

  • Rong-Yang Sun

    RIKEN

  • Seiji Yunoki

    RIKEN