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    Cosmic filaments confirm unexplained CMB temperature decrements in two independent redshift ranges

    Juan Ignacio Domínguez Feldman*

    Luis A. Pereyra†

    Frode K. Hansen‡

    Facundo Toscano§

    Diego Garcia Lambas∥

    • Facultad de Matemática, Astronomía, Física y Computación (FAMAF), UNC, Córdoba, Argentina

    • Observatorio Astronómico de Córdoba (OAC), UNC, Córdoba, Argentina

    • Institute of Theoretical Astrophysics, University of Oslo, PO Box 1029 Blindern, 0315 Oslo, Norway

    • *Contact author: juan.dominguez99@mi.unc.edu.ar
    • †Contact author: luis.pereyra@unc.edu.ar
    • ‡Contact author: f.k.hansen@astro.uio.no
    • §Contact author: facundo.toscano@mi.unc.edu.ar
    • ∥Contact author: diego.garcia.lambas@unc.edu.ar

    Phys. Rev. D 113, 043509 – Published 10 February, 2026

    DOI: https://doi.org/10.1103/s1v4-3cky

    Abstract

    Recent papers have reported an unexplained cooling of cosmic microwave background (CMB) photons passing through galaxies in nearby cosmic filaments z<0.02 at the >5σ level. Here we show for the first time that this effect is also present at higher redshifts 0.02<z<0.04. Instead of calculating the CMB temperature around individual galaxies as in previous works, we analyze mean CMB temperature profiles associated to cosmic filaments in three dimensions. We have considered different thresholds in the linear K-band luminosity density of the filaments as a proxy to mass density. Furthermore, we have analyzed the dependence of the results on the average orientation of filaments with respect to the line of sight. These studies were implemented to test the expected dependence on mass density as well as on photon trajectory length within the cosmic filaments. We find a 3−4σ detection of a CMB temperature decrement trend toward the spine of the filaments, the larger the mass and the more radially oriented the filament, the stronger the CMB temperature decrement. This trend is seen independently in both redshift ranges 0.004<z<0.02 and 0.02<z<0.04. We therefore conclude that our results provide strong evidence for a lower CMB temperature along massive cosmic filaments in the nearby Universe z<0.04.

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