4.7 Article

Production cross sections of cosmic antiprotons in the light of new data from the NA61 and LHCb experiments

Journal

PHYSICAL REVIEW D
Volume 97, Issue 10, Pages -

Publisher

AMER PHYSICAL SOC
DOI: 10.1103/PhysRevD.97.103019

Keywords

-

Funding

  1. Departments of Excellence grant - Italian Ministry of Education, University and Research (MIUR) [L. 232/2016]
  2. NASA Fermi Guest Investigator Program through the Fermi multi-year Large Program [81303]
  3. NASA Fermi Guest Investigator Program through the Fermi one-year Program [91245]

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The cosmic-ray flux of antiprotons is measured with high precision by the space-borne particle spectrometers AMS-02. Its interpretation requires a correct description of the dominant production process for antiprotons in our Galaxy, namely, the interaction of cosmic-ray proton and helium with the interstellar medium. In light of new cross section measurements by the NA61 experiment of p + p -> (p) over bar + X and the first ever measurement of p + He -> (p) over bar + X by the LHCb experiment, we update the parametrization of proton-proton and proton-nucleon cross sections. We find that the LHCb pHe data constrain a shape for the cross section at high energies and show for the first time how well the rescaling from the pp channel applies to a helium target. By using pp, pHe and pC data we estimate the uncertainty on the Lorentz invariant cross section for p + He -> (p) over bar + X. We use these new cross sections to compute the source term for all the production channels, considering also nuclei heavier than He both in cosmic rays and the interstellar medium. The uncertainties on the total source term are up to +/- 20% and slightly increase below antiproton energies of 5 GeV. This uncertainty is dominated by the p + p -> (p) over bar + X cross section, which translates into all channels since we derive them using the pp cross sections. The cross sections to calculate the source spectra from all relevant cosmic-ray isotopes are provided in Supplemental Material. We finally quantify the necessity of new data on antiproton production cross sections, and pin down the kinematic parameter space which should be covered by future data.

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