TL;DR
This paper enhances 21cmFAST with new feedback parametrizations, performs a comprehensive simulation of early galaxy formation, and forecasts detectability of cosmic dawn signals, aiding interpretation of upcoming 21-cm observations.
Contribution
It introduces a flexible feedback model in 21cmFAST, performs a large simulation matching UV luminosity functions, and predicts observable signatures of early universe processes.
Findings
The 21-cm signal is weaker due to rapid star-formation evolution.
High signal-to-noise detections are forecasted for HERA and SKA.
Spatial modulation of X-ray heating shows a detectable acoustic signature.
Abstract
The formation of the first galaxies during cosmic dawn and reionization (at redshifts ), triggered the last major phase transition of our universe, as hydrogen evolved from cold and neutral to hot and ionized. The 21-cm line of neutral hydrogen will soon allow us to map these cosmic milestones and study the galaxies that drove them. To aid in interpreting these observations, we upgrade the publicly available code {\tt 21cmFAST}. We introduce a new, flexible parametrization of the additive feedback from: an inhomogeneous, -dissociating (Lyman-Werner; LW) background; and dark matter -- baryon relative velocities; which recovers results from recent, small-scale hydrodynamical simulations with both effects. We perform a large, "best-guess" simulation as the 2021 installment of the Evolution of 21-cm Structure (EOS) project. This improves the previous release with a galaxy model…
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