English

Nuclear $\gamma$-ray emission from very hot accretion flows

High Energy Astrophysical Phenomena 2019-04-03 v2

Abstract

Optically thin accretion plasmas can reach ion temperatures Ti1010T_{\rm i} \geq 10^{10}K and thus trigger nuclear reactions. Using a large nuclear interactions network, we studied the radial evolution of the chemical composition of the accretion flow toward the black hole and computed the emissivity in nuclear γ\gamma-ray lines. In the advection dominated accretion flow (ADAF) regime, CNO and heavier nuclei are destroyed before reaching the last stable orbit. The overall luminosity in the de-excitation lines for a solar composition of plasma can be as high as few times 10510^{-5} the accretion luminosity (M˙c2\dot{M}c^2) and can be increased for heavier compositions up to 10310^{-3}. The efficiency of transformation of the kinetic energy of the outflow into high energy (100\geq 100~MeV) γ\gamma-rays through the production and decay of π0\pi^0-mesons can be higher, up to 10210^{-2} of the accretion luminosity. We show that in the ADAF model up to 15 percent of the mass of accretion matter can `evaporate' in the form of neutrons.

Keywords

Cite

@article{arxiv.1807.09507,
  title  = {Nuclear $\gamma$-ray emission from very hot accretion flows},
  author = {Ervin Kafexhiu and Felix Aharonian and Maxim Barkov},
  journal= {arXiv preprint arXiv:1807.09507},
  year   = {2019}
}

Comments

7 pages, 7 figures

R2 v1 2026-06-23T03:13:42.285Z