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    Oscillating profiles from dark matter scalar solitons

    Caio F. B. Macedo1,*, Nicolas Aimar2,3,†, João Luís Rosa4,5,‡, and Diego Rubiera-Garcia4,§

    • *Contact author: caiomacedo@ufpa.br
    • †Contact author: ndaimar@fe.up.pt
    • ‡Contact author: joaoluis92@gmail.com
    • §Contact author: drubiera@ucm.es

    Phys. Rev. D 114, 044002 – Published 3 August, 2026

    DOI: https://doi.org/10.1103/prrj-98p5

    Abstract

    Real scalar fields, e.g., the axion, cannot condensate into stationary solitonic configurations to form starlike structures, eventually either dispersing or collapsing. However, by relaxing the stationarity condition on the metric, it has been shown that oscillatory solitonic solutions—known as oscillatons—exist. Oscillatons share several properties with boson stars, including comparable compactness and mass ranges. However, their time-dependent nature can lead to potentially discriminating observable signatures. In this work, we explore the observational properties of oscillatons. We find that stable oscillatory circular orbits exist, extending down to the center of the configuration, supporting the possibility of accretion disk structures within the star. We compute the deflection of light rays and verify that it is largely insensitive to the time dependence of the metric. Despite this, the oscillatory behavior of the redshift factor has a strong effect on the observed intensity profiles from accretion disks, producing a breathinglike image whose frequency depends on the mass of the scalar field. In fact, their oscillation period may lie within the observational windows of the Event Horizon Telescope for Sgr A* and M87*, suggesting that this “twinkling” behavior may provide a potential observable signature of time-dependent compact objects. A detailed assessment of detectability in realistic interferometric observations is left for future work.

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