4.7 Article

Monitoring of the radio galaxy M 87 during a low -emission state from m 2012 to 2015 with MAGIC

Journal

MONTHLY NOTICES OF THE ROYAL ASTRONOMICAL SOCIETY
Volume 492, Issue 4, Pages 5354-5365

Publisher

OXFORD UNIV PRESS
DOI: 10.1093/mnras/staa014

Keywords

radiation mechanisms non-thermal; galaxies active; galaxies individual M 87; galaxies jets; gamma rays galaxies

Funding

  1. German BMBF
  2. German MPG
  3. Italian Istituto Nazionale di Fisica Nucleare (INFN)
  4. Italian Istituto Nazionale di Astrofisica (INAF)
  5. Swiss National Fund (SNF)
  6. ERDF under the Spanish Ministry of Economy and Competitiveness (MINECO) [FPA2015-69818-P, FPA2012-36668, FPA2015-68378-P, FPA2015-69210-C6-2-R, FPA2015-69210-C64-R, FPA2015-69210-C6-6-R, AYA2015-71042-P, AYA201676012-C3-1-P, ESP2015-71662-C2-2-P, FPA2017-90566-REDC]
  7. Indian Department of Atomic Energy
  8. Japanese JSPS
  9. Japanese MEXT
  10. Bulgarian Ministry of Education and Science, National RI Roadmap Project [DO1-153/28.08.2018]
  11. Spanish Centro de Excelencia 'Severo Ochoa' [SEV-2016-0588, SEV2015-0548]
  12. Unidad de Excelencia 'Maria de Maeztu' [MDM2014-0369]
  13. Croatian Science Foundation (HrZZ) Project [IP-2016-06-9782]
  14. University of Rijeka Project [13.12.1.3.02]
  15. DFG Collaborative Research Centers [SFB823/C4, SFB876/C3]
  16. Polish National Research Centre [UMO2016/22/M/ST9/00382]
  17. Brazilian MCTIC
  18. Brazilian CNPq
  19. Brazilian FAPERJ
  20. Departments of Excellence 2018-2022' Grant - Italian Ministry of Education, University and Research (MIUR) [L. 232/2016]
  21. Compagnia di San Paolo [S1618 L1 MASF 01]
  22. Ministry of Education, Universities and Research [MASF FFABR 17 01]
  23. National Aeronautics and Space Administration (NASA) [GO4-15096X, AR6-17012X, GO6-17081X]
  24. NASA [NAS5-26555]
  25. [GO 12293]
  26. [12671]
  27. [13061]
  28. [13759]

Ask authors/readers for more resources

M 87 is one of the closest (z = 0.004 36) extragalactic sources emitting at very high energies (VHF, E > 100 GeV). The aim of this work is to locale the region of the VHF gamma-ray emission and to describe the observed broad-band spectral energy distribution (SED) during the low VHF gamma-ray state. The data from M 87 collected between 2012 and 2015 as part of a MAGIC monitoring programme are analysed and combined with multiwavelength data from Fermi-LAT, Chandra, HST, FVN, VLBA, and the Liverpool Telescope. The averaged VHE gamma-ray spectrum can be fitted from 100 GeV to 10 TeV with a simple power law with a photon index of (-2.41 0.07), while the integral flux above 300 GeV is (1.44 0.13) x 10-12 cm 2 s I. During the campaign between 2012 and 2015, M87 is generally found in a low-emission state at all observed wavelengths. The VIIE gamma-ray flux from the present 2012-2015M 87 campaign is consistent with a constant flux with some hint of variability ( 3 a) on a daily time-scale in 2013. The low-state gamma-ray emission likely originates from the same region as the flare-state emission. Given the broad-band SED, both a leptonic synchrotron self-Compton and a hybrid photohadronic model reproduce the available data well, even if the latter is preferred. We note, however, that the energy stored in the magnetic field in the leptonic scenario is very low, suggesting a matter-dominated emission region.

Authors

I am an author on this paper
Click your name to claim this paper and add it to your profile.

Reviews

Primary Rating

4.7
Not enough ratings

Secondary Ratings

Novelty
-
Significance
-
Scientific rigor
-
Rate this paper

Recommended

No Data Available
No Data Available