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    Minimal model for vortex nucleation and reversal in spherical magnetic nanoparticles

    Michael P. Adams*,† and Andreas Michels‡

    • Department of Physics and Materials Science, University of Luxembourg, 162A Avenue de la Faiencerie, L-1511 Luxembourg, Grand Duchy of Luxembourg

    • *Contact author: michael.adams@mpsd.mpg.de
    • †Present address: Max Planck Institute for the Structure and Dynamics of Matter, Luruper Ch. 149, D-22761 Hamburg, Germany.
    • ‡Contact author: andreas.michels@uni.lu

    Phys. Rev. B 113, 224406 – Published 1 June, 2026

    DOI: https://doi.org/10.1103/8rkf-j2kn

    Abstract

    Magnetic nanoparticles beyond the single-domain limit often develop vortexlike magnetization textures arising from the competition between exchange and magnetostatic energies. While such states are routinely studied using micromagnetic simulations, transparent analytical descriptions of vortex-mediated hysteresis and nucleation remain scarce. Here, we develop a semianalytical minimal framework for vortex states in spherical magnetic nanoparticles. Guided by micromagnetic simulations, we introduce a parametrized vortex magnetization Ansatz based on hyperbolic functions that continuously interpolates between uniform and vortex states. In this way, we achieve a complexity reduction leading to a minimal Hamiltonian, which enables the efficient computation of magnetization curves and provides insight into vortex-mediated magnetization reversal. As an application, we derive analytical estimates for the critical vortex nucleation radius and field, recovering the functional form of Brown's classic result and extending it within a variational framework.

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