English

Crab Nebula: five-year observation with ARGO-YBJ

High Energy Astrophysical Phenomena 2015-06-23 v1

Abstract

The ARGO-YBJ air shower detector monitored the Crab Nebula gamma ray emission from 2007 November to 2013 February. The integrated signal, consisting of \sim3.3 ×\times 105^5 events,reached the statistical significance of 21.1 standard deviations. The obtained energy spectrum in the energy range 0.3-20 TeV can be described by a power law function dN/dE = I0_0 (E / 2 TeV)α^{-\alpha}, with a flux normalization I0_0 = (5.2 ±\pm 0.2) ×\times 1012^{-12} photons cm2^{-2} s1^{-1} TeV1^{-1} and α\alpha = 2.63 ±\pm 0.05, corresponding to an integrated flux above 1 TeV of 1.97 ×\times 1011^{-11} photons cm2^{-2} s1^{-1}. The systematic error is estimated to be less than 30%\% for the flux normalization and 0.06 for the spectral index. Assuming a power law spectrum with an exponential cutoff dN/dE = I0_0 (E / 2 TeV)α^{-\alpha} exp\exp (-E / Ecut_{cut}), the lower limit of the cutoff energy Ecut_{cut} is 12 TeV, at 90%\% confidence level. Our extended dataset allows the study of the TeV emission over long timescales. Over five years, the light curve of the Crab Nebula in 200-day bins is compatible with a steady emission with a probability of 7.3 ×\times 102^{-2}. A correlated analysis with Fermi-LAT data over \sim4.5 years using the light curves of the two experiments gives a Pearson correlation coefficient rr = 0.56 ±\pm 0.22. Concerning flux variations on timescales of days, a "blind" search for flares with a duration of 1-15 days gives no excess with a significance higher than four standard deviations. The average rate measured by ARGO-YBJ during the three most powerful flares detected by Fermi-LAT is 205 ±\pm 91 photons day1^{-1}, consistent with the average value of 137 ±\pm 10 day1^{-1}.

Keywords

Cite

@article{arxiv.1502.05665,
  title  = {Crab Nebula: five-year observation with ARGO-YBJ},
  author = {YBJ Collaboration},
  journal= {arXiv preprint arXiv:1502.05665},
  year   = {2015}
}

Comments

12 pages, 10 figures

R2 v1 2026-06-22T08:33:26.722Z