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    Multimode phonon-mediated enhancement of entanglement and competing synchronization in cavity magnomechanics

    Z. Imara1, Jia-Xin Peng2,*, E. K. Berinyuy3, S. K. Singh4,†, and A. El Allati1

    • 1Laboratory of R&D in Engineering Sciences, Faculty of Sciences and Techniques Al-Hoceima, Abdelmalek Essaadi University, Tetouan, Morocco
    • 2School of Physical Science and Technology, Nantong University, Nantong 226019, People's Republic of China
    • 3Department of Physics, Faculty of Science, University of Yaounde I, P.O. Box 812, Yaounde, Cameroon
    • 4Department of Physics, Akal University, Talwandi Sabo, Bathinda, Punjab 151302, India

    • *Contact author: JiaXinPeng@ntu.edu.cn
    • †Contact author: singhshailendra3@gmail.com

    Phys. Rev. B 114, 094418 – Published 17 August, 2026

    DOI: https://doi.org/10.1103/lww3-4dwv

    Abstract

    The generation of quantum correlations in hybrid quantum systems remains a central challenge due to the intrinsic limitations of linear interactions. In cavity magnomechanical platforms, the cavity-magnon coupling gives rise to hybridized cavity-magnon polaritons (CMPs). However, as a beam-splitter-type interaction, it does not by itself generate entanglement between the polariton modes in the absence of additional nonlinear or parametric processes. Here, we propose a mechanism based on multimode phonon mediation, in which multiple vibrational modes act as parallel scattering channels that couple the polaritons through Stokes and anti-Stokes processes. We show that, in the parameter regime explored here, the presence of multiple phonon modes leads to a monotonic enhancement of steady-state entanglement, thereby going beyond the limitations of conventional single-mode schemes. Furthermore, we demonstrate that quantum synchronization between the polariton modes originates from the same underlying scattering processes responsible for entanglement generation, yet exhibits an opposite scaling behavior with an increasing number of phonon modes for the phase quadrature, while the amplitude synchronization reveals collective squeezing that grows with the number of phonon channels. Our results provide new insights into the role of multimode interactions in shaping quantum correlations and establish a viable pathway for controlling entanglement and collective dynamics in hybrid magnomechanical platforms.

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