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    Anisotropic universes in light of background cosmological observations

    Jose L. Palacios-Córdoba*, J. Bayron Orjuela-Quintana, Gabriela A. Valencia-Zuñiga, and César A. Valenzuela-Toledo§

    • Departamento de Física, Universidad del Valle, Ciudad Universitaria Meléndez, Santiago de Cali 760032, Colombia

    • *Contact author: palacios.jose@correounivalle.edu.co
    • Contact author: john.orjuela@correounivalle.edu.co
    • Contact author: gabriela.zuniga@correounivalle.edu.co
    • §Contact author: cesar.valenzuela@correounivalle.edu.co

    Phys. Rev. D 113, 043511 – Published 10 February, 2026

    DOI: https://doi.org/10.1103/kvvs-97ly

    Abstract

    The cosmological principle is a cornerstone of the standard cosmological model. However, recent observations suggest potential deviations from this assumption, hinting at a small anisotropic expansion. Such an expansion can arise from sources that break rotational invariance. A minimal realization of this scenario is described by a Bianchi I geometry, where the degree of anisotropy is quantified by the shear parameter Σ. In this work, we constrain the present-day value of the shear Σ0 by confronting theoretical predictions with recent cosmological data. We implement various anisotropic models within the Boltzmann code class and explore their parameter space using the sampler montepython. Although our results show that Σ0 is model dependent, notably, in one specific scenario considering a homogeneous scalar field coupled to a 2-form field, Σ0=0 is excluded at the 2σ confidence level, with mean value around |Σ0|104 while remaining consistent with observations. These findings challenge the conventional assumption that cosmic shear is negligible in the present Universe. Moreover, the anisotropic expansion in this model is driven by a steep scalar field potential, a feature often found in supergravity-inspired scenarios. While anisotropic models offer interesting alternatives and could help explain some cosmological anomalies, they generally introduce additional parameters, making the standard ΛCDM model statistically favored in most cases. Still, they remain compatible with current observations and provide new perspectives on features not fully explained within the standard framework. These results highlight the importance of further exploring anisotropic cosmologies to better understand their implications.

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