Mirror Dark Sector Solution of the Hubble Tension with Time-varying Fine-structure Constant
arXiv:2211.03236 · doi:10.1103/PhysRevD.107.043529
Abstract
We explore a model introduced by Cyr-Racine, Ge, and Knox (arXiv:2107.13000(2)) that resolves the Hubble tension by invoking a ``mirror world" dark sector with energy density a fixed fraction of the ``ordinary" sector of Lambda-CDM. Although it reconciles cosmic microwave background and large-scale structure observations with local measurements of the Hubble constant, the model requires a value of the primordial Helium mass fraction that is discrepant with observations and with the predictions of Big Bang Nucleosynthesis (BBN). We consider a variant of the model with standard Helium mass fraction but with the value of the electromagnetic fine-structure constant slightly different during photon decoupling from its present value. If at that epoch is lower than its current value by , then we can achieve the same Hubble tension resolution as in Cyr-Racine, et al. but with consistent Helium abundance. As an example of such time-evolution, we consider a toy model of an ultra-light scalar field, with mass eV, coupled to electromagnetism, which evolves after photon decoupling and that appears to be consistent with late-time constraints on variation and the weak equivalence principle.
15 pages, 1 figure. Updated weak equivalence principle constraints. This version accepted for publication in PRD
References in corpus (13)
- A Comprehensive Measurement of the Local Value of the Hubble Constant with 1 km/s/Mpc Uncertainty from the Hubble Space Telescope and the SH0ES Team
- In the Realm of the Hubble tension a Review of Solutions
- Measurements of the Hubble Constant: Tensions in Perspective
- The Olympics: A fair ranking of proposed models
- MICROSCOPE mission: final results of the test of the Equivalence Principle
- A buyer's guide to the Hubble Constant
- Dark Energy at early times and ACT: a larger Hubble constant without late-time priors
- Interacting radiation after Planck and its implications for the Hubble Tension
- A Step in Understanding the Hubble Tension
- Symmetry of Cosmological Observables, and a High Hubble Constant as an Indicator of a Mirror World Dark Sector
- Cosmology with Mirror Dark Matter
- Early Universe Constraints on Time Variation of Fundamental Constants
- Varying couplings in the early universe: correlated variations of and