Published May 1, 2020 | Version v1
Journal article

Probing the Magnetic Field in the GW170817 Outflow Using H.E.S.S. Observations

  • 1. Centre for Space Research, North-West University, Potchefstroom 2520 (South Africa)
  • 2. Laboratoire Leprince-Ringuet, École Polytechnique, CNRS, Institut Polytechnique de Paris, F-91128 Palaiseau (France)
  • 3. Max-Planck-Institut für Kernphysik, P.O. Box 103980, D-69029 Heidelberg (Germany)
  • 4. Aix Marseille Université, CNRS/IN2P3, CPPM, Marseille (France)
  • 5. Department of Physics, Rikkyo University, 3-34-1 Nishi-Ikebukuro, Toshima-ku, Tokyo 171-8501 (Japan)
  • 6. Laboratoire d'Annecy de Physique des Particules, Univ. Grenoble Alpes, Univ. Savoie Mont Blanc, CNRS, LAPP, F-74000 Annecy (France)
  • 7. University of Oxford, Department of Physics, Denys Wilkinson Building, Keble Road, Oxford OX1 3RH (United Kingdom)
  • 8. IRFU, CEA, Université Paris-Saclay, F-91191 Gif-sur-Yvette (France)
  • 9. Instytut Fizyki Ja̧drowej PAN, ul. Radzikowskiego 152, 31-342 Kraków (Poland)
  • 10. DESY, D-15738 Zeuthen (Germany)
  • 11. Obserwatorium Astronomiczne, Uniwersytet Jagielloński, ul. Orla 171, 30-244 Kraków (Poland)
  • 12. Department of Physics and Electrical Engineering, Linnaeus University, SE-351 95 Växjö (Sweden)
  • 13. School of Physical Sciences, University of Adelaide, Adelaide, SA 5005 (Australia)

Description

The detection of the first electromagnetic counterpart to the binary neutron star (BNS) merger remnant GW170817 established the connection between short γ-ray bursts and BNS mergers. It also confirmed the forging of heavy elements in the ejecta (a so-called kilonova) via the r-process nucleosynthesis. The appearance of nonthermal radio and X-ray emission, as well as the brightening, which lasted more than 100 days, were somewhat unexpected. Current theoretical models attempt to explain this temporal behavior as either originating from a relativistic off-axis jet or a kilonova-like outflow. In either scenario, there is some ambiguity regarding how much energy is transported in the nonthermal electrons versus the magnetic field of the emission region. Combining the Very Large Array (radio) and Chandra (X-ray) measurements with observations in the GeV–TeV domain can help break this ambiguity, almost independently of the assumed origin of the emission. Here we report for the first time on deep H.E.S.S. observations of GW170817/GRB 170817A between 124 and 272 days after the BNS merger with the full H.E.S.S. array of telescopes, as well as on an updated analysis of the prompt (<5 days) observations with the upgraded H.E.S.S. phase-I telescopes. We discuss implications of the H.E.S.S. measurement for the magnetic field in the context of different source scenarios.

Availability note (English)

Available from http://dx.doi.org/10.3847/2041-8213/ab8b59

Additional details

Identifiers

Publishing Information

Journal Title
Astrophysical Journal Letters
Journal Volume
894
Journal Issue
2
Journal Page Range
[5 p.]
ISSN
2041-8205

INIS

Country of Publication
United Kingdom
Country of Input or Organization
International Atomic Energy Agency (IAEA)
INIS RN
52056149
Subject category
S79: ASTROPHYSICS, COSMOLOGY AND ASTRONOMY;
Descriptors DEI
COSMIC RADIO SOURCES; COSMIC X-RAY SOURCES; CURRENTS; EMISSION; GEV RANGE; NEUTRON STARS; NUCLEOSYNTHESIS; R PROCESS; RELATIVISTIC RANGE; TELESCOPES; TEV RANGE
Descriptors DEC
COSMIC RAY SOURCES; ENERGY RANGE; EVOLUTION; STAR EVOLUTION; STARS; SYNTHESIS

Optional Information