Hot New Early Dark Energy: Dark Radiation Matter Decoupling
arXiv:2508.03795 · doi:10.1103/787w-dpbz
Abstract
We present a microscopic model of the dark sector that resolves the Hubble tension within standard current data sets (Planck 2018, Pantheon+ and DESI DR2 BAO) based on well-known fundamental principles, gauge symmetry and spontaneous symmetry breaking. It builds on the Hot New Early Dark Energy (Hot NEDE) setup, featuring a dark gauge symmetry broken to in a supercooled phase transition that creates a thermal bath of self-interacting dark radiation in the epoch between Big Bang Nucleosynthesis and recombination. Adding a fermion multiplet charged under the gauge symmetry provides a naturally stable component of dark matter that interacts with dark radiation. Spontaneous symmetry breaking predicts a decoupling of this interaction once the dark sector cools down, that we refer to as dark radiation matter decoupling (DRMD). We also provide a simplified DRMD model that captures the essential features of the full theory while retaining additional falsifiable predictions. Using the data sets stated above, we find agreement with the SHES determination of at the 1.4 level, compared to a 5.7 tension in CDM, thereby providing a resolution of the Hubble tension.
38 pages, 8 figures, 2 tables; code available at https://github.com/NEDE-Cosmo/DRMD-CLASS; matches version published in PRD