Self-sustaining star formation fronts in filaments during cosmic dawn
arXiv:1804.02407 · doi:10.3847/2041-8213/aad3ce
Abstract
We propose a new model for the ignition of star formation in low-mass halos by a self-sustaining shock front in cosmic filaments at high redshifts. The gaseous fuel for star formation resides in low mass halos which can not cool on their own due to their primordial composition and low virial temperatures. We show that star formation can be triggered in these filaments by a passing shock wave. The shells swept-up by the shock cool and fragment into cold clumps that form massive stars via thermal instability on a timescale shorter than the front's dynamical timescale. The shock, in turn, is self-sustained by energy injection from supernova explosions. The star formation front is analogous to a detonation wave, which drives exothermic reactions powering the shock. We find that sustained star formation would typically propel the front to a speed of during the epoch of reionization. Future observations by the could reveal the illuminated regions of cosmic filaments, and constrain the initial mass function of stars in them.
14 pages, 5 figures, accepted for publication in ApJ Letters
References in corpus (14)
- Cosmic Reionization and Early Star-Forming Galaxies: A Joint Analysis of New Constraints from Planck and Hubble Space Telescope
- Massive molecular outflows and negative feedback in ULIRGs observed by Herschel-PACS
- Star formation in a galactic outflow
- The Destruction of Cosmological Minihalos by Primordial Supernovae
- The Birth of a Galaxy. II. The Role of Radiation Pressure
- Metal and molecule cooling in simulations of structure formation
- Metal and molecule cooling in simulations of structure formation
- The Production of Cold Gas Within Galaxy Outflows
- The Little Galaxies that Could (Reionize the Universe): Predicting Faint End Slopes & Escape Fractions at z > 4
- On the Formation of Molecular Clumps in QSO Outflows
- Scaling Relations for Galaxies Prior to Reionization
- Thermal instability and multi-phase interstellar medium in the first galaxies
- Formation and spatial distribution of hypervelocity stars in AGN outflows
- Gas clump formation via thermal instability in high-redshift dwarf galaxy mergers