The Impact of HD Cooling on the Formation of the First Stars
arXiv:0802.3918 · doi:10.1086/590530
Abstract
We use numerical simulations to investigate the importance of HD formation and cooling on the first generation of metal-free stars in a LCDM cosmology. We have implemented and tested non-equilibrium HD chemistry in an adaptive mesh refinement simulation code and applied it to two situations. (1) It is first applied to the formation of 10^5 - 10^6 Msun halos which form in the absence of any ionizing source. We show, in agreement with previous work, that HD cooling is of only marginal importance for most halos; however, we find that for the lowest mass halos, HD cooling can equal or surpass the H2 cooling rate. This leads to a population of stars formed in halos with effective HD cooling that are less massive by a factor of ~6 compared to halos dominated by H2 cooling. (2) In the second part of the paper, we ionize the halos in order to explore the impact of HD cooling in the presence of an ample population of free electrons. This leads to cooler temperatures (due to the electron- catalyzed production of H2) and somewhat lower resulting proto-stellar mass. Adding HD chemistry lowers the temperature further, to the level of the CMB. We find that HD cooling dominates over H2 cooling in the density range 10^2 cm^-3 to 10^6 cm^-3, but above this density, the temperature rises and H2 cooling dominates again. Because of this, the accretion rate on to the protostar is almost the same as in the H2 case (at least for accreted masses below 50-100 Msun), therefore we argue that HD cooling in ionized halos will probably not result in a population of significantly lower mass stars.
13 pages, 11 figures, with referee suggestions; ApJ accepted
References in corpus (11)
- Wilkinson Microwave Anisotropy Probe (WMAP) Three Year Results: Implications for Cosmology
- Population III star formation in a Lambda CDM universe, I: The effect of formation redshift and environment on protostellar accretion rate
- 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
- The HII Region of a Primordial Star
- The first generation of stars in LCDM cosmology
- Formation of Massive Primordial Stars in a Reionized Gas
- UV Radiative Feedback on High-Redshift Proto-Galaxies
- The role of HD cooling in primordial star formation
- Cosmological Simulations of the Preheating Scenario for Galaxy Cluster Formation: Comparison to Analytic Models and Observations
Cited by in corpus (19)
- Grackle: a Chemistry and Cooling Library for Astrophysics
- Primordial Star Formation under the Influence of Far Ultraviolet Radiation: 1540 Cosmological Halos and the Stellar Mass Distribution
- The critical radiation intensity for direct collapse black hole formation: dependence on the radiation spectral shape
- Star Formation in the First Galaxies I: Collapse Delayed by Lyman-Werner Radiation
- The Birth Mass Function of Pop III Stars
- HD and H2 formation in low-metallicity dusty gas clouds at high redshift
- HD/H2 Molecular Clouds in the Early Universe: The Problem of Primordial Deuterium
- HD molecules at high redshift: The absorption system at z=2.3377 towards Q 1232+082
- Starbursts in low-mass haloes at Cosmic Dawn. I. The critical halo mass for star formation
- ROBO: a Model and a Code for the Study of the Interstellar Medium
- Conditions for HD Cooling in the First Galaxies Revisited: Interplay between Far-Ultraviolet and Cosmic Ray Feedback in Population III Star Formation
- The Supersonic Project: To cool or not to cool Supersonically Induced Gas Objects (SIGOs)?
- The Impact of Molecular Hydrogen Cooling on the Galaxy Formation Threshold
- Massive black hole formation in Population III star clusters
- If dark matter is fuzzy, the first stars form in massive pancakes
- Mapping the Universe in HD
- Can supermassive stars form in protogalaxies due to internal Lyman-Werner feedback?
- The first stars
- Assessing Parameters for Ring Polymer Molecular Dynamics Simulations at Low Temperatures: DH+H Chemical Reaction