English

PBH mass growth through radial accretion during the radiation dominated era

Cosmology and Nongalactic Astrophysics 2013-12-20 v1 General Relativity and Quantum Cosmology

Abstract

We model the radial accretion of radiation on Primordial Black Holes (PBH) by numerically solving Einstein's equations coupled to an ultrarelativistic ideal gas with equation of state p=ρ/3p=\rho/3. We calculate the final mass of a black hole by the integration of the accreted radiation energy density during the leptonic era between t104st\sim10^{-4}s to t102st\sim 10^2s after the Big Bang. Our results indicate that small PBHs with initial masses between 10410^{-4} to 1M1M_{\odot} may grow up to hundreds of solar masses, and thus can be SMBH seeds. On the other hand, PBHs formed at t1st\sim 1s with initial mass between 900 and 980M\sim 980M_{\odot}, by the time t100st\sim 100s show masses of 10410^4 to 106M10^6M_{\odot} which are masses of seeds or already formed SMBHs. The fact that we consider only radial flow implies that our results work well as limiting cases, and it is expected that under more general scenarios the accretion rates may change significantly. Nevertheless we show that it is possible that SMBHs can be PBHs that grew due to the accretion of radiation.

Keywords

Cite

@article{arxiv.1312.0989,
  title  = {PBH mass growth through radial accretion during the radiation dominated era},
  author = {F. D. Lora-Clavijo and F. S. Guzman and A. Cruz-Osorio},
  journal= {arXiv preprint arXiv:1312.0989},
  year   = {2013}
}

Comments

15 pages, 6 eps figures. Accepted for publication in JCAP