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    Prethermal Time-Crystalline Corner Modes

    Si Jiang1, Dong Yuan1, Wenjie Jiang1, Dong-Ling Deng1,2,3,*, and Francisco Machado4,5,†

    • 1Center for Quantum Information, IIIS, Tsinghua University, Beijing 100084, China
    • 2Hefei National Laboratory, Hefei 230088, China
    • 3Shanghai Qi Zhi Institute, 41st Floor, AI Tower, No. 701 Yunjin Road, Xuhui District, Shanghai 200232, China
    • 4ITAMP, Harvard-Smithsonian Center for Astrophysics, Cambridge, Massachusetts 02138, USA
    • 5Department of Physics, Harvard University, Cambridge, Massachusetts 02138, USA

    • *Contact author: dldeng@tsinghua.edu.cn
    • Contact author: francisco.leal_machado@cfa.harvard.edu

    Phys. Rev. Lett. 135, 110401 – Published 10 September, 2025

    DOI: https://doi.org/10.1103/np9w-jsf9

    Abstract

    We demonstrate the existence of prethermal discrete time crystals whose subharmonic response is entirely localized to zero-dimensional corner modes. Within the exponentially long prethermal regime, we show that the robustness of these corner modes arises from two related, yet distinct, mechanisms: the presence of a higher-order symmetry-protected topological phase in the effective Hamiltonian, or the emergence of a dynamical constraint that prevents the decay of the corner mode. While the first mechanism ensures the stability of the subharmonic response throughout the entirety of the prethermal regime, it is restricted to initial states in the ground state manifold of the effective Hamiltonian. By contrast, the second mechanism enables the observation of the prethermal time-crystalline order for arbitrary initial states, albeit with a timescale that is not only determined by the frequency of the drive, but also the relative energy scale across the system’s sublattices. We characterize these two mechanisms by simulating the dynamics of a periodically driven two-dimensional spin model, and discuss natural extensions of our model to all other dimensions.

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