Primordial star formation: relative impact of H2 three-body rates and initial conditions
arXiv:1307.7567 · doi:10.1051/0004-6361/201322387
Abstract
Population III stars are the first stars in the Universe to form at z=20-30 out of a pure hydrogen and helium gas in minihalos of 10^5-10^6 M . Cooling and fragmentation is thus regulated via molecular hydrogen. At densities above 10^8 cm, the three-body H2 formation rates are particularly important for making the gas fully molecular. These rates were considered to be uncertain by at least a few orders of magnitude. We explore the impact of new accurate three-body H2 formation rates derived by Forrey (2013) for three different minihalos, and compare to the results obtained with three-body rates employed in previous studies. The calculations are performed with the cosmological hydrodynamics code ENZO (release 2.2) coupled with the chemistry package KROME (including a network for primordial chemistry), which was previously shown to be accurate in high resolution simulations. While the new rates can shift the point where the gas becomes fully molecular, leading to a different thermal evolution, there is no trivial trend in how this occurs. While one might naively expect the results to be inbetween the calculations based on Palla et al. (1983) and Abel et al. (2002), the behavior can be close to the former or the latter depending on the dark matter halo that is explored. We conclude that employing the correct three-body rates is about as equally important as the use of appropriate initial conditions, and that the resulting thermal evolution needs to be calculated for every halo individually.
10 pages, 9 figures, A&A, 561, A13 (2014)
References in corpus (15)
- Protostar Formation in the Early Universe
- The Formation of Population III Binaries from Cosmological Initial Conditions
- A new Jeans resolution criterion for (M)HD simulations of self-gravitating gas: Application to magnetic field amplification by gravity-driven turbulence
- Uncertainties in H2 and HD Chemistry and Cooling and their Role in Early Structure Formation
- Population III stars: hidden or disappeared ?
- Black hole formation in the early universe
- The characteristic black hole mass resulting from direct collapse in the early universe
- The Formation of Population III Stars in Gas Accretion Stage: Effects of Magnetic Fields
- Reionization - A probe for the stellar population and the physics of the early universe
- Rate of three-body recombination of hydrogen molecules during primordial star formation
- Magneto-Hydrodynamics of Population III Star Formation
- The impact of thermodynamics on gravitational collapse: filament formation and magnetic field amplification
- Sturmian theory of three-body recombination: application to the formation of H in primordial gas
- Impact of an accurate modeling of primordial chemistry in high resolution studies
- Detectable Signatures of Cosmic Radiative Feedback
Cited by in corpus (16)
- Formation sites of Population III star formation: The effects of different levels of rotation and turbulence on the fragmentation behavior of primordial gas
- Large-Scale Structure Formation: from the first non-linear objects to massive galaxy clusters
- A detailed framework to incorporate dust in hydrodynamical simulations
- Universal temperature dependence of the ion-neutral-neutral three-body recombination rate
- Low-metallicity star formation: Relative impact of metals and magnetic fields
- Formation of carbon-enhanced metal-poor stars in the presence of far ultraviolet radiation
- Sturmian theory of three-body recombination: application to the formation of H in primordial gas
- Dark-matter halo mergers as a fertile environment for low-mass Population III star formation
- Effects of turbulence and rotation on protostar formation as a precursor to seed black holes
- Role of primordial black holes in the direct collapse scenario of supermassive black hole formation at high redshifts
- The effect of dark matter resolution on the collapse of baryons in high redshift numerical simulations
- The role of 3-body H formation in the fragmentation of primordial gas
- Formation of metal-free binaries: Impact of H line cooling and CIE cooling
- On the effects of rotation in primordial star-forming clouds
- The chemical evolution of self-gravitating primordial disks
- Studying The Effect of Radiation Pressure on Evolution of a Population III Stellar Cluster