Population III Star Formation In Large Cosmological Simulations I. Halo Temporal and Physical Environment
arXiv:1306.4679 · doi:10.1088/0004-637X/773/2/108
Abstract
We present a semi-analytic, computationally inexpensive model to identify halos capable of forming a Population III star in cosmological simulations across a wide range of times and environments. This allows for a much more complete and representative set of Population III star forming halos to be constructed, which will lead to Population III star formation simulations that more accurately reflect the diversity of Population III stars, both in time and halo mass. This model shows that Population III and chemically enriched stars coexist beyond the formation of the first generation of stars in a cosmological simulation until at least z~10, and likely beyond, though Population III stars form at rates that are 4-6 orders of magnitude lower than chemically enriched stars by z=10. A catalog of more than 40,000 candidate Population III forming halos were identified, with formation times temporally ranging from z=30 to z=10, and ranging in mass from 2.3x10^5 M_sun to 1.2x10^10 M_sun. At early times, the environment that Population III stars form in is very similar to that of halos hosting chemically enriched star formation. At later times Population III stars are found to form in low-density regions that are not yet chemically polluted due to a lack of previous star formation in the area. Population III star forming halos become increasingly spatially isolated from one another at later times, and are generally closer to halos hosting chemically enriched star formation than to another halo hosting Population III star formation by z~10.
17 pages, 13 figures. Submitted to ApJ
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Cited by in corpus (27)
- JINAbase: A database for chemical abundances of metal-poor stars
- Simulating cosmic metal enrichment by the first galaxies
- The Growth of Black Holes from Population III Remnants in the Renaissance Simulations
- Limits on Pop III star formation with the most iron-poor stars
- The Influence of Streaming Velocities on the Formation of the First Stars
- The First Stars: A Low-Mass Formation Mode
- Predicting the locations of possible long-lived low-mass first stars: Importance of satellite dwarf galaxies
- The Effects of Population III X-ray and Radio Backgrounds on the Cosmological 21-cm Signal
- The Persistence of Population III Star Formation
- Public Release of A-SLOTH: Ancient Stars and Local Observables by Tracing Halos
- Self-consistent Semi-analytic Modeling of Feedback During Primordial Star Formation and Reionization
- Tracing the first stars and galaxies of the Milky Way
- Heating the IGM by X-rays from Population III Binaries in High Redshift Galaxies
- Following the Cosmic Evolution of Pristine Gas II: The search for Pop III-Bright Galaxies
- Chasing the observational signatures of seed black holes at z > 7: candidate observability
- Following The Cosmic Evolution Of Pristine Gas I: Implications For Milky Way Halo Stars
- Chasing the observational signatures of seed black holes at z > 7: candidate statistics
- Binary black hole mergers from Population III stars: uncertainties from star formation and binary star properties
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- Starbursts in low-mass haloes at Cosmic Dawn. I. The critical halo mass for star formation
- The Emergence of the First Star-free Atomic Cooling Haloes in the Universe
- Constraining Warm Dark Matter and Pop III stars with the Global 21-cm Signal
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- The Effects of Radiative Feedback and Supernova Induced Turbulence on Early Galaxies
- A Global Semi-Analytic Model of the First Stars and Galaxies Including Dark Matter Halo Merger Histories
- Revealing the formation histories of the first stars with the cosmic near-infrared background
- From Dark Matter Minihalos to Large-Scale Radiative Feedback: A Self-Consistent 3D Simulation of the First Stars and Galaxies using Neural Networks