English

Possible Evidence for the Stochastic Acceleration of Secondary Antiprotons by Supernova Remnants

High Energy Astrophysical Phenomena 2017-06-19 v2 High Energy Physics - Phenomenology Space Physics

Abstract

The antiproton-to-proton ratio in the cosmic-ray spectrum is a sensitive probe of new physics. Using recent measurements of the cosmic-ray antiproton and proton fluxes in the energy range of 1-1000 GeV, we study the contribution to the pˉ/p\bar{p}/p ratio from secondary antiprotons that are produced and subsequently accelerated within individual supernova remnants. We consider several well-motivated models for cosmic-ray propagation in the interstellar medium and marginalize our results over the uncertainties related to the antiproton production cross section and the time-, charge-, and energy-dependent effects of solar modulation. We find that the increase in the pˉ/p\bar{p}/p ratio observed at rigidities above \sim 100 GV cannot be accounted for within the context of conventional cosmic-ray propagation models, but is consistent with scenarios in which cosmic-ray antiprotons are produced and subsequently accelerated by shocks within a given supernova remnant. In light of this, the acceleration of secondary cosmic rays in supernova remnants is predicted to substantially contribute to the cosmic-ray positron spectrum, accounting for a significant fraction of the observed positron excess.

Keywords

Cite

@article{arxiv.1701.04406,
  title  = {Possible Evidence for the Stochastic Acceleration of Secondary Antiprotons by Supernova Remnants},
  author = {Ilias Cholis and Dan Hooper and Tim Linden},
  journal= {arXiv preprint arXiv:1701.04406},
  year   = {2017}
}

Comments

5 pages, 3 figures and 4 tables. Changes in v2: extended discussion on the method, title and some text revisions, all in agreement with final published PRD version. Results unchanged