English

Radio Supernovae as Tev Gamma-Ray Sources

Astrophysics 2011-05-23 v1

Abstract

When applied to the blast wave formed by the explosion of a massive star as a supernova (SN), the theory of diffusive particle acceleration at shock fronts predicts a very high energy density in cosmic rays. Almost immediately after particles begin to be injected into the process, the cosmic ray pressure rises until comparable to the ram-pressure encountered by the shock front. Those supernovae which are observed in the radio band i.e., radio supernovae (RSNe), provide direct evidence of particle acceleration in the form of synchrotron emitting electrons. Furthermore, these objects are particularly interesting, since they are usually surrounded by a relatively dense confining medium. The acceleration of cosmic rays can then lead to the production of very high energy (VHE) gamma-rays which arise from collisions between energetic particles and target nuclei. We estimate the cosmic ray energy density assuming a fraction ϕ\lesim1\phi\lesim1 of the energy available at the shock front is converted into cosmic rays. Combining this with the parameters describing the environment of the SN progenitor, as deduced from observations, and from more detailed modelling, we compute the flux at Earth \tevflux\tevflux of photons of energy above 11\,TeV. For the relatively weak but nearby supernova SN1987A we predict \tevflux=2×1013\fluxunits\tevflux=2\times10^{-13}\,\fluxunits before the shock front encounters the ring of dense matter seen by the Hubble Space Telescope. Subsequently, the flux is expected to rise further. The medium around SN1993J in M81 is thought to have a density

Keywords

Cite

@article{arxiv.astro-ph/9411084,
  title  = {Radio Supernovae as Tev Gamma-Ray Sources},
  author = {J. G. Kirk and P. Duffy and Lewis Ball},
  journal= {arXiv preprint arXiv:astro-ph/9411084},
  year   = {2011}
}

Comments

4 pages uuencoded, compressed postscript. Accepted for publication as a Letter in Astronomy and Astrophysics

R2 v1 2026-07-22T09:24:53.471Z