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    Electromagnon Signatures of a Metastable Multiferroic State

    Blake S. Dastrup1,*, Zhuquan Zhang1,*, Peter R. Miedaner1, Yu-Che Chien1, Young Sun2, Yan Wu3, Huibo Cao3, Edoardo Baldini4,†, and Keith A. Nelson1,‡

    • *These authors contributed equally to this work.
    • Contact author: edoardo.baldini@austin.utexas.edu
    • Contact author: kanelson@mit.edu

    Phys. Rev. Lett. 134, 086706 – Published 27 February, 2025

    DOI: https://doi.org/10.1103/PhysRevLett.134.086706

    Abstract

    Magnetoelectric multiferroic materials, particularly type-II multiferroics where ferroelectric polarizations arise from magnetic order, offer significant potential for the simultaneous control of magnetic and electric properties. However, it remains an open question as to how the multiferroic ground states are stabilized on the free-energy landscape in the presence of intricate competition between the magnetoelectric coupling and thermal fluctuations. In this work, by using terahertz time-domain spectroscopy in combination with an applied magnetic field, photoexcitation, and single-shot detection, we reveal the spectroscopic signatures of a magnetic-field-induced metastable multiferroic state in a hexaferrite. This state remains robust until thermal influences cause the sample to revert to the original paraelectric state. Our findings shed light on the emergence of metastable multiferroicity and its interplay with thermal dynamics.

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