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October 8, 2025Monthly Notices of the Royal Astronomical Society4 citationsOpen Access

MIGHTEE-H i: The direct detection of neutral hydrogen in galaxies at z 0.25

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MJM. J. JarvisMTM. N. TudoracheIHIan Heywood

Key Points

  • Detection of 11 galaxies at z > 0.25 using the MIGHTEE survey shows significantly larger H i masses.
  • The highest redshift detection, at z = 0.3841, enhances understanding of H i in the early Universe.
  • First-ever measurement of the baryonic Tully-Fisher relation with H i at z > 0.25 indicates potential flattening for high-mass galaxies.
  • Findings may suggest evolutionary trends or significant molecular gas mass in high-mass galaxies.

Abstract

Abstract Atomic hydrogen constitutes the gas reservoir from which molecular gas and star formation in galaxies emerges. However, the weakness of the line means it has been difficult to directly detect in all but the very local Universe. Here we present results from the first search using the MeerKAT International Tiered Extragalactic Exploration (MIGHTEE) Survey for high-redshift (z 0.25) H i emission from individual galaxies. By searching for 21-cm emission centered on the position and redshift of optically-selected emission-line galaxies we overcome difficulties that hinder untargeted searches. We detect 11 galaxies at z 0.25, forming the first sample of z 0.25 detections with an interferometer, with the highest redshift detection at z = 0.3841. We find they have much larger H i masses than their low-redshift H i-selected counterparts for a given stellar mass. This can be explained by the much larger cosmological volume probed at these high redshifts, and does not require any evolution of the H i mass function. We make the first-ever measurement of the baryonic Tully-Fisher relation (bTFr) with H i at z 0.25 and find consistency with the local bTFr, but with tentative evidence of a flattening in the relation at these redshifts for higher-mass objects. This may signify evolution, in line with predictions from hydrodynamic simulations, or that the molecular gas mass in these high-mass galaxies could be significant. This study paves the way for future studies of H i beyond the local Universe, using both searches targeted at known objects and via pure H i selection.

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Cite This Study

Jarvis et al. (2025) studied this question.

synapsesocial.com/papers/68e5c1c36950a706b22b5b2chttps://doi.org/10.1093/mnras/staf1702
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