Upper Limit on Star Formation and Metal Enrichment in Minihalos
arXiv:1604.01986 · doi:10.1093/mnrasl/slw204
Abstract
An analysis of negative radiative feedback from resident stars in minihalos is performed. It is found that the most effective mechanism to suppress star formation is provided by infrared photons from resident stars via photo-detachment of . It is shown that a stringent upper bound on (total stellar mass, metallicity) of (, ) in any newly minted atomic cooling halo can be placed, with the actual values possibly significantly lower. This has both important physical ramifications on formation of stars and supermassive black seeds in atomic cooling halos at high redshift, pertaining to processes of low temperature metal cooling, dust formation and fragmentation, and direct consequences on the faint end galaxy luminosity function at high redshift and cosmological reionization. The luminosity function of galaxies at the epoch of reionization may be substantially affected due to the combined effect of a diminished role of minihalos and an enhanced contribution from Pop III stars in atomic cooling halos. Upcoming results on reionization optical depth from Planck High-Frequency Instrument data may provide a significant constraint on and a unique probe of this star formation physical process in minihalos. As a numerical example, in the absence of significant contributions from minihalos with virial masses below the reionization optical depth is expected to be no greater than , whereas allowing for minihalos of masses as low as (, ) to form stars unconstrained by this self-regulation physical process, the reionization optical depth is expected to exceed , respectively.
11 pages, 2 figures, submitted to MNRAS
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Cited by in corpus (4)
- Feedback-regulated star formation and escape of LyC photons from mini-haloes during reionisation
- Starbursts in low-mass haloes at Cosmic Dawn. I. The critical halo mass for star formation
- From Blue Cloud to Red Sequence: Evidence of Morphological Transition Prior to Star Formation Quenching
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