Hints of Primordial Magnetic Fields at Recombination and Implications for the Hubble Tension
arXiv:2503.09599 · doi:10.1038/s41550-025-02737-x
Abstract
Primordial Magnetic Fields (PMFs), long studied as relics of the early Universe, accelerate recombination and have been proposed as a way to relieve the Hubble tension. However, previous studies relied on simplified toy models. Here we use recent evaluations of recombination with PMFs, incorporating full magnetohydrodynamic (MHD) simulations and detailed Lyman-alpha radiative transfer, to test PMF-enhanced recombination (CDM) against observational data from the cosmic microwave background (CMB), baryon acoustic oscillations (BAO), and Type Ia supernovae (SN). Focusing on non-helical PMFs with a Batchelor spectrum, we find a preference for present-day total field strengths of approximately 5-10 pico-Gauss. Depending on the dataset combination, this preference ranges from mild ( with Planck + DESI) to moderate ( with Planck + DESI + SH0ES-calibrated SN) significance. The CDM has Planck + DESI values equal to or better than CDM while predicting a higher Hubble constant. Future high-resolution CMB temperature and polarization measurements will be crucial for confirming or further constraining PMFs at recombination. Field strengths of 5-10 pico-Gauss align closely with those required for cluster magnetic fields to originate entirely from primordial sources, without the need for additional dynamo amplification.
13 pages, 6 figures, 7 tables; improved clarity and interpretation in V2 accepted to Nature Astronomy
References in corpus (22)
- 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
- The Pantheon+ Analysis: Cosmological Constraints
- DESI 2024 VI: Cosmological Constraints from the Measurements of Baryon Acoustic Oscillations
- DESI DR2 Results II: Measurements of Baryon Acoustic Oscillations and Cosmological Constraints
- Dark Energy Survey Year 3 Results: Cosmology from Cosmic Shear and Robustness to Data Calibration
- CMB power spectra and cosmological parameters from Planck PR4 with CamSpec
- A radio ridge connecting two galaxy clusters in a filament of the cosmic web
- Nonhelical inverse transfer of a decaying turbulent magnetic field
- Cluster Cepheids with High Precision Gaia Parallaxes, Low Zeropoint Uncertainties, and Hubble Space Telescope Photometry
- Progress on Cosmological Magnetic Fields
- How well do we understand cosmological recombination?
- Inverse cascade of non-helical magnetic turbulence in a relativistic fluid
- Constraints on Primordial Magnetic Fields from Planck combined with the South Pole Telescope CMB B-mode polarization measurements
- Consistency of Planck, ACT and SPT constraints on magnetically assisted recombination and forecasts for future experiments
- What it takes to solve the Hubble tension through modifications of cosmological recombination
- Small-scale clumping at recombination and the Hubble tension
- Can small-scale baryon inhomogeneities resolve the Hubble tension? An investigation with ACT DR4
- Scaling of the Hosking integral in decaying magnetically-dominated turbulence
- Modified recombination and the Hubble tension
- Dark Matter Minihalos from Primordial Magnetic Fields
- Resistively controlled primordial magnetic turbulence decay
- Constraints on Primordial Magnetic Fields from the Lyman-α forest
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- Is Dynamical Dark Energy Necessary? DESI BAO and Modified Recombination
- Sound-Horizon-Agnostic Inference of the Hubble Constant and Neutrino Mass from BAO, CMB Lensing, and Galaxy Weak Lensing and Clustering
- Dark Energy in the DESI Era: A Brief Review of Evidence, Beyond-CDM Interpretations, and Tensions
- Comparing measures of the Hubble and BAO tensions in CDM and possible solutions in gravity
- Lowering the Horizon on Dark Energy: A Late-Time Response to Early Solutions for the Hubble Tension
- Can WIMPs Survive the Legacy of a Magnetised Early Universe?
- Primordial magnetic field from chiral plasma instability with sourcing