Prospects for precision cosmology with the 21 cm signal from the dark ages
arXiv:2305.08593 · doi:10.1038/s41550-023-02057-y
Abstract
The 21 cm signal from the dark ages provides a potential new probe of fundamental cosmology. While exotic physics could be discovered, here we quantify the expected benefits within the standard cosmology. A measurement of the global (sky-averaged) 21 cm signal to the precision of thermal noise from a 1,000 h integration would yield a measurement within 10% of a combination of cosmological parameters. A 10,000 h integration would improve this measurement to 3.2% and constrain the cosmic helium fraction to 9.9%. Precision cosmology with 21 cm fluctuations requires a collecting area of 10 km (corresponding to 400,000 stations), which, with a 1,000 h integration, would exceed the same global case by a factor of . Enhancing the collecting area or integration time by an order of magnitude would yield a 0.5% parameter combination, a helium measurement five times better than Planck and a constraint on the neutrino mass as good as Planck. Our analysis sets a baseline for upcoming lunar and space-based dark-ages experiments.
Published in Nature Astronomy, The definitive version is available at https://doi.org/10.1038/s41550-023-02057-y
References in corpus (9)
- Improved upper limits on the 21-cm signal power spectrum of neutral hydrogen at from LOFAR
- Deep multi-redshift limits on Epoch of Reionisation 21cm Power Spectra from Four Seasons of Murchison Widefield Array Observations
- The CMBR fluctuations from HI perturbations prior to reionization
- The 21cm angular-power spectrum from the dark ages
- The Effects of Dark Matter-Baryon Scattering on Redshifted 21 cm Signals
- The bispectrum of redshifted 21-cm fluctuations from the dark ages
- Towards simulating and quantifying the light-cone EoR 21-cm signal
- Observing nulling of primordial correlations via the 21 cm signal
- The Dark Ages' 21-cm Trispectrum
Cited by in corpus (18)
- Mapper of the IGM spin temperature: instrument overview
- Gravitational waves from mergers of Population III binary black holes: roles played by two evolution channels
- Simulating the Detection of the Global 21 cm Signal with MIST for Different Models of the Soil and Beam Directivity
- Constraining exotic dark matter models with the dark ages 21-cm signal
- Cosmic mysteries and the hydrogen 21-cm line: bridging the gap with lunar observations
- RHINO: A large horn antenna for detecting the 21cm global signal
- FlexKnot as a Generalised Model of the Sky-averaged 21-cm Signal at z ~ 6-30 in the Presence of Systematics
- Joint 21-cm and CMB Forecasts for Constraining Self-Interacting Massive Neutrinos
- Rapid and Late Cosmic Reionization Driven by Massive Galaxies: a Joint Analysis of Constraints from 21-cm, Lyman Line & CMB Data Sets
- Revisiting primordial magnetic fields through 21-cm physics: Bounds and forecasts
- A Bayesian approach to modelling spectrometer data chromaticity corrected using beam factors -- II. Model priors and posterior odds
- Radiometer Calibration using Machine Learning
- Confronting global 21-cm signal with symmetric dark matter models
- Astrophysical uncertainties challenge 21-cm forecasts: A primordial black hole case study
- Synthesis imaging with a lunar orbit array: I. global sky map and its systematics
- Modes of the Dark Ages 21cm field accessible to a lunar radio interferometer
- The magnitude of the dark ages 21-cm signal in the context of existing early and late time constraints on CDM
- The impact of lunar topography on the 21-cm power spectrum for grid-based arrays : Insights for the Dark-ages EXplorer (DEX)