The Role of Radiation and Halo Mergers in Pop III Star Formation

Lilia Correa Magnus, Britton D. Smith, Sadegh Khochfar, Brian W. O'Shea, John H. Wise, Michael L. Norman, Matthew J. Turk

Research output: Contribution to journalArticlepeer-review

Abstract

We present a study of the co-evolution of a population of primordial star-forming minihalos at Cosmic Dawn. In this study, we highlight the influence of individual Population III stars on the ability of nearby minihalos to form sufficient molecular hydrogen to undergo star formation. In the absence of radiation, we find the minimum halo mass required to bring about collapse to be ~10^5 Msun, this increases to ~10^6 Msun after two stars have formed. We find an inverse relationship between halo mass and the time required for it to recover its molecular gas after being disrupted by radiation from a nearby star. We also take advantage of the extremely high resolution to investigate the effects of major and minor mergers on the gas content of star-forming minihalos. Contrary to previous claims of fallback of supernova ejecta, we find minihalos evacuated after hosting Pop III stars primarily recover gas through mergers with undisturbed halos. We identify an intriguing type of major merger between recently evacuated halos and gas-rich ones, finding that these 'mixed' mergers accelerate star formation instead of suppressing it like their low redshift counterparts. We attribute this to the gas-poor nature of one of the merging halos resulting in no significant rise in temperature or turbulence and instead inducing a rapid increase in central density and hydrostatic pressure. This constitutes a novel formation pathway for Pop III stars and establishes major mergers as potentially the primary source of gas, thus redefining the role of major mergers at this epoch.
Original languageEnglish
Pages (from-to)307-320
Number of pages14
JournalMonthly Notices of the Royal Astronomical Society
Volume527
Issue number1
Early online date17 Oct 2023
DOIs
Publication statusPublished - 1 Jan 2024

Keywords / Materials (for Non-textual outputs)

  • stars: Population III
  • galaxies: high redshift
  • galaxies: star formation early Universe

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