Neutrino mass limits and decaying dark matter: background evolution versus perturbations
arXiv:2603.03284 · doi:10.1088/1475-7516/2026/06/022
Abstract
We revisit cosmological neutrino mass bounds when a fraction of dark matter is allowed to decay to massless dark radiation. By compensating the late-time increase in the matter density induced by neutrinos becoming non-relativistic, decaying dark matter (DDM) can render datasets solely sensitive to the background density effectively insensitive to neutrino masses. Using data from baryonic acoustic oscillations (BAO) and Type Ia supernovae together with a distance prior from the cosmic microwave background (CMB), we find that neutrino masses as large as are allowed without degrading the fit. Moreover, the combination of BAO data with the CMB distance prior yields a preference for a non-zero DDM fraction, and alleviates the need for dynamical dark energy with phantom crossing. However, the degeneracy introduced by DDM is decisively broken once perturbation observables are included. Incorporating the full CMB likelihood, and in particular CMB lensing, restores strong constraints on the neutrino mass in the DDM scenario, . In contrast, neutrino mass constraints in a smooth dark energy model described by the Chevallier-Polarski-Linder parametrization become merely stronger compared to background-only analyses. Our results highlight the essential role of structure-growth measurements in assessing extensions of the dark sector and to obtain robust cosmological neutrino mass bounds.
26 pages, 13 figures, 3 tables; references added; matches published version
References in corpus (45)
- SciPy 1.0--Fundamental Algorithms for Scientific Computing in Python
- Array Programming with NumPy
- LSST: from Science Drivers to Reference Design and Anticipated Data Products
- Cosmological parameters from CMB and other data: a Monte-Carlo approach
- Direct Evidence for Neutrino Flavor Transformation from Neutral-Current Interactions in the Sudbury Neutrino Observatory
- First Results from KamLAND: Evidence for Reactor Anti-Neutrino Disappearance
- Exploring the Expansion History of the Universe
- The Cosmic Linear Anisotropy Solving System (CLASS) II: Approximation schemes
- Planck 2018 results. I. Overview and the cosmological legacy of Planck
- The Pantheon+ Analysis: Cosmological Constraints
- Planck 2018 results. V. CMB power spectra and likelihoods
- Massive neutrinos and cosmology
- The Pantheon+ Analysis: The Full Dataset and Light-Curve Release
- Conservative Constraints on Early Cosmology: an illustration of the Monte Python cosmological parameter inference code
- Planck 2018 results. VIII. Gravitational lensing
- Cobaya: Code for Bayesian Analysis of hierarchical physical models
- Euclid. I. Overview of the Euclid mission
- DESI DR2 Results II: Measurements of Baryon Acoustic Oscillations and Cosmological Constraints
- NuFit-6.0: Updated global analysis of three-flavor neutrino oscillations
- GetDist: a Python package for analysing Monte Carlo samples
- Crossing the Phantom Divide with Parameterized Post-Friedmann Dark Energy
- CMB power spectra and cosmological parameters from Planck PR4 with CamSpec
- Star-forming galaxies as the origin of diffuse high-energy backgrounds: Gamma-ray and neutrino connections, and implications for starburst history
- A fresh look at linear cosmological constraints on a decaying dark matter component
- DESI 2024: Reconstructing Dark Energy using Crossing Statistics with DESI DR1 BAO data
- Converting non-relativistic dark matter to radiation
- Physical effects involved in the measurements of neutrino masses with future cosmological data
- Matching current observational constraints with nonminimally coupled dark energy
- Neutrino cosmology after DESI: tightest mass upper limits, preference for the normal ordering, and tension with terrestrial observations
- Cosmological Limits on the Neutrino Mass and Lifetime
- Relaxing Cosmological Neutrino Mass Bounds with Unstable Neutrinos
- Escaping local minima with derivative-free methods: a numerical investigation
- Massive neutrinos and cosmic composition
- Linear cosmological constraints on 2-body decaying dark matter scenarios and the tension
- SPT-3G D1: CMB temperature and polarization power spectra and cosmology from 2019 and 2020 observations of the SPT-3G Main field
- Invisible neutrino decay in precision cosmology
- Determining the Neutrino Lifetime from Cosmology
- Updated constraints on decaying cold dark matter
- Constraints on neutrino mass from Cosmic Microwave Background and Large Scale Structure
- Do you smell something decaying? Updated linear constraints on decaying dark matter scenarios
- Quantifying the tension between cosmological and terrestrial constraints on neutrino masses
- Constraining dark matter decays with cosmic microwave background and weak lensing shear observations
- Neutrino mass tension or suppressed growth rate of matter perturbations?
- New Interpretations of the Cosmological Preference for a Negative Neutrino Mass
- A frequentist view on the two-body decaying dark matter model