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    Engineering micromotion in Floquet prethermalization via space-time symmetries

    Ilyoun Na1,2,3,*, Jack Kemp4,†, Sinéad M. Griffin2,3,‡, and Yang Peng5,6,§

    • *Contact author: ilyoun1214@berkeley.edu
    • †Contact author: jack_kemp@g.harvard.edu
    • ‡Contact author: sgriffin@lbl.gov
    • §Contact author: yang.peng@csun.edu

    Phys. Rev. B 112, 174316 – Published 25 November, 2025

    DOI: https://doi.org/10.1103/3hrs-sd3s

    Abstract

    We present a systematic framework for Floquet prethermalization under strong resonant driving, emphasizing the pivotal role of dynamical space-time symmetries. Our approach demonstrates how dynamical space-time symmetries map onto the projective static symmetry group of the prethermal Hamiltonian governing the prethermal regime. We introduce techniques for detecting dynamical symmetries through the time evolution of local observables, facilitating a detailed analysis of micromotion within each period and surpassing the limitations of conventional stroboscopic Floquet prethermal dynamics. To implement this framework, we present a prethermal protocol that preserves order-2 dynamical symmetry in a spin-ladder model, confirming the predicted relationships between the expectation values of local observables at distinct temporal points in the Floquet cycle, linked by this symmetry.

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