English

Cosmological Evolution of Quasars

Astrophysics 2016-08-30 v1

Abstract

We present a model for the cosmological evolution of quasars (QSOs) under the assumption that they are powered by massive accreting black holes. Accretion flows around massive black holes make a transition from high radiative efficiency (10\sim 10%) to low efficiency, advection-dominated flows when M˙/M˙Edd{\dot M}/{\dot M}_{Edd} falls below the critical rate 0.3α2102\sim 0.3\alpha^2\sim 10^{-2} where M˙{\dot M} is the mass accretion rate, M˙EddM{\dot M}_{Edd}\propto M is the usual Eddington rate with the nominal 10% efficiency, and α(1)\alpha (\le 1) is the dimensionless viscosity parameter. We identify this transition with the observed break at a redshift 2\sim 2 in the QSOs' X-ray luminosity evolution. Growth of black holes through accretion could naturally lead to such a transition at a critical redshift zc13z_c\sim 1-3, provided that most of high redshift QSOs appear with near Eddington luminosities at z34z\sim 3-4 and the accretion rates decline over the Hubble time in a roughly synchronous manner. Before the transition, the QSOs' luminosities (with a high efficiency) slowly decrease and after the transition at zcz_c, the QSO luminosities evolve approximately as (1+z)K(z)\propto (1+z)^{K(z)} where K(z)K(z) gradually varies from z=zcz=z_c to z0z\sim 0 around K3K\sim3. The results depend on the details of the QSO X-ray emission mechanism. We discuss some further implications.

Keywords

Cite

@article{arxiv.astro-ph/9609146,
  title  = {Cosmological Evolution of Quasars},
  author = {Insu Yi},
  journal= {arXiv preprint arXiv:astro-ph/9609146},
  year   = {2016}
}

Comments

Latex, 2 PS figures, To Appear in ApJ

R2 v1 2026-07-22T09:30:23.657Z