English

Measuring the cosmological 21-cm dipole with 21-cm global experiments

Cosmology and Nongalactic Astrophysics 2023-12-20 v2

Abstract

A measurement of the 21-cm global signal would be a revealing probe of the Dark Ages, the era of first star formation, and the Epoch of Reionization. It has remained elusive owing to bright galactic and extra-galactic foreground contaminants, coupled with instrumental noise, ionospheric effects, and beam chromaticity. The simultaneous detection of a consistent 21-cm dipole signal alongside the 21-cm global signal would provide confidence in a claimed detection. We use simulated data to investigate the possibility of using drift-scan dipole antenna experiments to achieve a detection of both monopole and dipole. We find that at least two antennae located at different latitudes are required to localise the dipole. In the absence of foregrounds, a total integration time of 104\sim 10^4 hours is required to detect the dipole. With contamination by simple foregrounds, we find that the integration time required increases to 105\sim 10^5 hours. We show that the extraction of the 21-cm dipole from more realistic foregrounds requires a more sophisticated foreground modelling approach. Finally, we motivate a global network of dipole antennae that could reasonably detect the dipole in 103\sim 10^3 hours of integration time.

Keywords

Cite

@article{arxiv.2310.06063,
  title  = {Measuring the cosmological 21-cm dipole with 21-cm global experiments},
  author = {Yordan D. Ignatov and Jonathan R. Pritchard and Yuqing Wu},
  journal= {arXiv preprint arXiv:2310.06063},
  year   = {2023}
}

Comments

12 pages, 15 figures