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Bibliographic Details
Main Authors: Bizarria, Bruno B., Novaes, Camila P., Avila, Felipe, Mokeddem, Rahima, da Costa, Helissa H., Wuensche, Carlos A., Silva, Gabriel A. S.
Format: Preprint
Published: 2025
Subjects:
Online Access:https://arxiv.org/abs/2511.13931
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Table of Contents:
  • The homogeneity scale, $R_{\rm H}$, offers a fundamental test of the Cosmological Principle, yet it has not yet been measured with 21cm intensity mapping surveys. A key limitation for such a measurement is the telescope beam, which artificially smooths the observed signal. We quantify this effect using the two-point correlation function and the correlation dimension, $\mathcal{D}_2(r)$, to model how beam convolution suppresses intrinsic clustering. For any given redshift $z$, we identify a maximum beam width, $σ_{\rm max}(z)$, beyond which the homogeneity scale cannot be recovered. This limit defines an inaccessible region in the $σ\times z$ parameter space, where $R_{\rm H}$ is erased by beam smoothing. Applying this framework to several current and upcoming radio telescopes, we assess their ability to probe $R_{\rm H}$. Our results provide the first quantitative forecast of the instrumental requirements for measuring the cosmic homogeneity scale with 21cm IM, and establish a theoretical basis for future observational applications.