Fragmentation in the First Galaxies
arXiv:1004.0267 · doi:10.1088/0004-637X/723/2/1568
Abstract
We study the gravitational fragmentation of cold accretion streams flowing into a typical first galaxy. We use a one-zone hydrodynamical model to examine the thermal evolution of the gas entering a 10^8 M_sun DM halo at z=10. The goal is to find the expected fragmentation mass scale and thus a characteristic mass of the first population of stars to form by shock fragmentation at high redshift. Our model accurately describes the chemical and thermal evolution of the gas as we are specifically concerned with how the cooling of the gas alters its fragmentation properties. We find there to be a sharp drop in the fragmentation mass at a metallicity of ~10^-4 Z_sun when a strong molecule destroying, LW background is present. However, If molecules can efficiently form, they dominate the cooling at T < 10^4 K, demonstrating no 'critical metallicity'. Dust grains are not included in our chemical model, but we argue their inclusion would not significantly the results. We also find that this physical scenario allows for the formation of a cluster of solar mass fragments, or a single 10^4 M_sun fragment, possibly the precursors to primeval clusters and SMBHs. Lastly, we conclude that the usual assumption of isobaricity for galactic shocks breaks down in gas of sufficiently high metallicity, suggesting that metal cooling may lead to thermal instabilities.
18 Pages, 9 figures, accepted for publication in ApJ
References in corpus (43)
- Five-Year Wilkinson Microwave Anisotropy Probe (WMAP) Observations: Cosmological Interpretation
- Theory of Star Formation
- Cold streams in early massive hot haloes as the main mode of galaxy formation
- Cats and Dogs, Hair and A Hero: A Quintet of New Milky Way Companions
- Nucleosynthetic signatures of the first stars
- A common mass scale for satellite galaxies of the Milky Way
- The rapid formation a large rotating disk galaxy three billion years after the Big Bang
- The Atomic to Molecular Transition in Galaxies. II: HI and H_2 Column Densities
- Protostar Formation in the Early Universe
- Time-Dependent Ionization in Radiatively Cooling Gas
- The Formation of Population III Binaries from Cosmological Initial Conditions
- Accretion-Driven Turbulence as Universal Process: Galaxies, Molecular Clouds, and Protostellar Disks
- Resolving the Formation of Protogalaxies. III. Feedback from the First Stars
- Fluctuations in the High-Redshift Lyman-Werner Background: Close Halo Pairs as the Origin of Supermassive Black Holes
- Can Supermassive Black Holes Form in Metal-Enriched High-Redshift Protogalaxies ?
- The First Galaxies: Assembly, Cooling and the Onset of Turbulence
- The First Galaxies: Chemical Enrichment, Mixing, and Star Formation
- Population III star formation in a Lambda CDM universe, I: The effect of formation redshift and environment on protostellar accretion rate
- Resolving the Formation of Protogalaxies. II. Central Gravitational Collapse
- The Atomic to Molecular Transition in Galaxies. I: An Analytic Approximation for Photodissociation Fronts in Finite Clouds
- Early Cosmological HII/HeIII Regions and Their Impact on Second-Generation Star Formation
- Star formation at very low metallicity. I: Chemistry and cooling at low densities
- Two populations of metal-free stars in the early Universe
- Resolving the Formation of Protogalaxies. I. Virialization
- The chemistry of population III supernova ejecta: II - The nucleation of molecular clusters as a diagnostic for dust in the early universe
- Metal and molecule cooling in simulations of structure formation
- Metal and molecule cooling in simulations of structure formation
- Metal Cooling in Simulations of Cosmic Structure Formation
- On the formation of dwarf galaxies and stellar halos
- Occurrence of Metal-free Galaxies in the Early Universe
- The formation of compact massive self-gravitating discs in metal-free haloes with virial temperatures of ~ 13000-30000 K
- Was Star-Formation Suppressed in High-Redshift Minihalos?
- Does Radiative Feedback by the First Stars Promote or Prevent Second Generation Star Formation?
- How the First Stars Regulated Local Star Formation I: Radiative Feedback
- Black hole formation in primordial galaxies: chemical and radiative conditions
- The minimum stellar metallicity observable in the Galaxy
- Metals, dust and the cosmic microwave background: fragmentation of high-redshift star-forming clouds
- HD and H2 formation in low-metallicity dusty gas clouds at high redshift
- On the First Generation of Stars
- Impact of Cosmic Rays on Population III Star Formation
- Cosmic rays and the primordial gas
- Intergalactic baryon-rich regions at high redshift
- Consequences of cosmic microwave background-regulated star formation
Cited by in corpus (40)
- The First Galaxies
- The Birth of a Galaxy: Primordial Metal Enrichment and Stellar Populations
- Formation of the First Stars
- Photodissociation of H2 in Protogalaxies: Modeling Self-Shielding in 3D Simulations
- Pre-galactic metal enrichment - The chemical signatures of the first stars
- The Birth of a Galaxy. II. The Role of Radiation Pressure
- The first low-mass stars: critical metallicity or dust-to-gas ratio?
- The Impact of Star Formation and Gamma-Ray Burst Rates at High Redshift on Cosmic Chemical Evolution and Reionization
- High-redshift formation and evolution of central massive objects II: The census of BH seeds
- Confined Population III Enrichment and the Prospects for Prompt Second-Generation Star Formation
- Supermassive black hole formation by the cold accretion shocks in the first galaxies
- Star Formation in the First Galaxies I: Collapse Delayed by Lyman-Werner Radiation
- The First Galaxies: Assembly of Disks and Prospects for Direct Detection
- Legacy of star formation in the pre-reionization universe
- The Direct Collapse of a Massive Black Hole Seed Under the Influence of an Anisotropic Lyman-Werner Source
- Probing Pre-galactic Metal Enrichment with High-Redshift Gamma-Ray Bursts
- Star Formation in the First Galaxies - II: Clustered Star Formation and the Influence of Metal Line Cooling
- Gravitational waves from Population III binary black holes formed by dynamical capture
- Protostellar Feedback and Final Mass of the Second-Generation Primordial Stars
- Higher D or Li: Probes of Physics beyond the Standard Model
- Large-Scale Structure Formation: from the first non-linear objects to massive galaxy clusters
- The Chemical Imprint of Silicate Dust on the Most Metal-Poor Stars
- Scaling Relations for Galaxies Prior to Reionization
- Formation of the First Low-Mass Stars from Cosmological Initial Conditions
- Star formation in the first galaxies - III. Formation, evolution, and characteristics of the first stellar cluster
- Low-metallicity star formation: Relative impact of metals and magnetic fields
- Observability of Low-Luminosity AGN in the Early Universe with JWST
- Formation of carbon-enhanced metal-poor stars in the presence of far ultraviolet radiation
- Radiative Cooling II: Effects of Density and Metallicity
- Toward extremely metal poor stars
- Global radiation signature from early structure formation
- Conditions for HD Cooling in the First Galaxies Revisited: Interplay between Far-Ultraviolet and Cosmic Ray Feedback in Population III Star Formation
- Cosmic Chemical Evolution with an Early Population of Intermediate Mass Stars
- Possible Evidence for Metal Accretion onto the Surfaces of Metal-Poor Main-Sequence Stars
- Non-linear power spectra of dark and luminous matter in halo model of structure formation
- Halos in Dark Ages: formation and chemistry
- Contribution of the first galaxies to the cosmic far-infrared/sub-millimeter background - I. Mean background level
- Formation of the First Galaxies: Theory and Simulations
- Condition for low-mass star formation in shock-compressed metal-poor clouds
- Star Formation for Predictive Primordial Galaxy Formation