We propose a cosmological framework where the primordial state of the universe is dominated by pure energy (ρp) that converts into baryonic matter (ρm). In this scenario, gravity is an emergent property described by an evolving coupling G(t). This transition leads to an accelerated cooling (T ∝ t−5/3) and neutral hydrogen recombination at t ≈ 8, 000 years post-Big Bang. Our model predicts a linear growth of perturbations (δ ∝ t1), resolving the JWST high-redshift galaxy tension and the H0 discrepancy without dark components.

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1. Verfasser: MORA, Jorge Ariel
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Sprache:Englisch
Veröffentlicht: Zenodo 2026
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author MORA, Jorge Ariel
author_facet MORA, Jorge Ariel
contents <p>We propose a cosmological framework where the primordial state of the universe is dominated by<br>pure energy (ρp) that converts into baryonic matter (ρm). In this scenario, gravity is an emergent<br>property described by an evolving coupling G(t). This transition leads to an accelerated cooling<br>(T ∝ t−5/3) and neutral hydrogen recombination at t ≈ 8, 000 years post-Big Bang. Our model<br>predicts a linear growth of perturbations (δ ∝ t1), resolving the JWST high-redshift galaxy tension<br>and the H0 discrepancy without dark components.</p>
format Recurso digital
id zenodo_https___doi_org_10_5281_zenodo_19361632
institution Zenodo
language eng
publishDate 2026
publisher Zenodo
record_format zenodo
spellingShingle We propose a cosmological framework where the primordial state of the universe is dominated by pure energy (ρp) that converts into baryonic matter (ρm). In this scenario, gravity is an emergent property described by an evolving coupling G(t). This transition leads to an accelerated cooling (T ∝ t−5/3) and neutral hydrogen recombination at t ≈ 8, 000 years post-Big Bang. Our model predicts a linear growth of perturbations (δ ∝ t1), resolving the JWST high-redshift galaxy tension and the H0 discrepancy without dark components.
MORA, Jorge Ariel
Physical cosmology
<p>We propose a cosmological framework where the primordial state of the universe is dominated by<br>pure energy (ρp) that converts into baryonic matter (ρm). In this scenario, gravity is an emergent<br>property described by an evolving coupling G(t). This transition leads to an accelerated cooling<br>(T ∝ t−5/3) and neutral hydrogen recombination at t ≈ 8, 000 years post-Big Bang. Our model<br>predicts a linear growth of perturbations (δ ∝ t1), resolving the JWST high-redshift galaxy tension<br>and the H0 discrepancy without dark components.</p>
title We propose a cosmological framework where the primordial state of the universe is dominated by pure energy (ρp) that converts into baryonic matter (ρm). In this scenario, gravity is an emergent property described by an evolving coupling G(t). This transition leads to an accelerated cooling (T ∝ t−5/3) and neutral hydrogen recombination at t ≈ 8, 000 years post-Big Bang. Our model predicts a linear growth of perturbations (δ ∝ t1), resolving the JWST high-redshift galaxy tension and the H0 discrepancy without dark components.
topic Physical cosmology
url https://doi.org/10.5281/zenodo.19361632