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Fermi and Swift Observations of GRB 190114C: Tracing the Evolution of High-energy Emission from Prompt to Afterglow

  • M. Ajello
  • , M. Arimoto
  • , M. Axelsson
  • , L. Baldini
  • , G. Barbiellini
  • , D. Bastieri
  • , R. Bellazzini
  • , A. Berretta
  • , E. Bissaldi
  • , R. D. Blandford
  • , R. Bonino
  • , E. Bottacini
  • , J. Bregeon
  • , P. Bruel
  • , R. Buehler
  • , E. Burns
  • , S. Buson
  • , R. A. Cameron
  • , R. Caputo
  • , P. A. Caraveo
  • E. Cavazzuti, S. Chen, G. Chiaro, S. Ciprini, J. Cohen-Tanugi, D. Costantin, S. Cutini, F. D'Ammando, M. Deklotz, P. De La Torre Luque, F. De Palma, A. Desai, N. Di Lalla, L. Di Venere, F. Fana Dirirsa, S. J. Fegan, A. Franckowiak, Y. Fukazawa, S. Funk, P. Fusco, F. Gargano, D. Gasparrini, N. Giglietto, R. Gill, F. Giordano, M. Giroletti, J. Granot, D. Green, I. A. Grenier, M. H. Grondin, S. Guiriec, E. Hays, D. Horan, G. Jóhannesson, D. Kocevski, M. Kovac'Evic', M. Kuss, S. Larsson, L. Latronico, M. Lemoine-Goumard, J. Li, I. Liodakis, F. Longo, F. Loparco, M. N. Lovellette, P. Lubrano, S. Maldera, D. Malyshev, A. Manfreda, G. Martí-Devesa, M. N. Mazziotta, J. E. McEnery, I. Mereu, M. Meyer, P. F. Michelson, W. Mitthumsiri, T. Mizuno, M. E. Monzani, E. Moretti, A. Morselli, I. V. Moskalenko, M. Negro, E. Nuss, N. Omodei, M. Orienti, E. Orlando, M. Palatiello, V. S. Paliya, D. Paneque, Z. Pei, M. Persic, M. Pesce-Rollins, V. Petrosian, F. Piron, H. Poon, T. A. Porter, G. Principe, J. L. Racusin, S. Rain, R. Rando, B. Rani, M. Razzano, S. Razzaque, A. Reimer, O. Reimer, F. Ryde, P. M. Saz Parkinson, D. Serini, C. Sgr, E. J. Siskind, G. Spandre, P. Spinelli, H. Tajima, K. Takagi, M. N. Takahashi, D. Tak, J. B. Thayer, D. J. Thompson, D. F. Torres, E. Troja, J. Valverde, B. Van Klaveren, K. Wood, M. Yassine, G. Zaharijas, B. Mailyan, P. N. Bhat, M. S. Briggs, W. Cleveland, M. Giles, A. Goldstein, M. Hui, Christian Malacaria, R. Preece, O. J. Roberts, P. Veres, C. Wilson-Hodge, A. Von Kienlin, S. B. Cenko, P. O'Brien, A. P. Beardmore, A. Lien, J. P. Osborne, A. Tohuvavohu, V. D'Elia, A. D'A, M. Perri, J. Gropp, N. Klingler, M. Capalbi, G. Tagliaferri, M. Stamatikos, M. De Pasquale
  • Clemson University
  • Kanazawa University
  • Stockholm University
  • AlbaNova
  • Università di Pisa
  • Istituto Nazionale di Fisica Nucleare, Sezione di Trieste
  • Università di Trieste
  • Sezione di Padova
  • Università di Padova
  • Sezione di Pisa
  • Università di Perugia
  • Dell'Università e Del Politecnico di Bari
  • Istituto Nazionale di Fisica Nucleare, Sezione di Bari
  • SLAC National Accelerator Laboratory
  • Istituto Nazionale di Fisica Nucleare, Sezione di Torino
  • Università degli Studi di Torino
  • Laboratoire Univers et Particules de Montpellier
  • Laboratoire Leprince-Ringuet
  • Deutsches Elektronen Synchrotron DESY
  • NASA/Goddard Space Flight Center
  • Universität Würzburg
  • INAF-Istituto di Astrofisica Spaziale e Fisica Cosmica
  • Agenzia Spaziale Italiana
  • Sezione di Roma Tor Vergata
  • Sezione di Perugia
  • INAF Istituto di Radioastronomia
  • Stellar Solutions Inc.
  • University of Johannesburg
  • Hiroshima University
  • Friedrich-Alexander-Universität Erlangen-Nürnberg
  • Open University of Israel
  • Max-Planck-Institut für Physik
  • Université Paris-Saclay
  • Université Bordeaux 1
  • George Washington University
  • University of Iceland
  • NASA Marshall Space Flight Center
  • Oskar Klein Centre
  • Dalarna University
  • Naval Research Laboratory
  • Leopold-Franzens-Universität Innsbruck
  • University of Maryland, College Park
  • Mahidol University
  • Universitat Autònoma de Barcelona
  • Osservatorio Astronomico di Trieste
  • Santa Cruz Institute for Particle Physics
  • University of Hong Kong
  • NYCB Real-Time Computing Inc.
  • Nagoya University
  • Institució Catalana de Recerca i Estudis Avançats
  • Praxis Inc.
  • University of Alabama in Huntsville
  • Universities Space Research Association
  • Jacobs Technology Inc.
  • Max-Planck Institut für extraterrestrische Physik
  • Universiry of Leicester
  • University of Maryland, Baltimore County (UMBC)
  • University of Toronto
  • ASI Space Science Data Center
  • INAF Osservatorio Astronomico di Roma
  • IASF Palermo
  • Pennsylvania State University
  • INAF Osservatorio Astronomico di Brera
  • The Ohio State University
  • Istanbul University

Research output: Contribution to journalArticlepeer-review

75 Citations (Scopus)

Abstract

We report on the observations of gamma-ray burst (GRB) 190114C by the Fermi Gamma-ray Space Telescope and the Neil Gehrels Swift Observatory. The prompt gamma-ray emission was detected by the Fermi GRB Monitor (GBM), the Fermi Large Area Telescope (LAT), and the Swift Burst Alert Telescope (BAT) and the long-lived afterglow emission was subsequently observed by the GBM, LAT, Swift X-ray Telescope (XRT), and Swift UV Optical Telescope. The early-time observations reveal multiple emission components that evolve independently, with a delayed power-law component that exhibits significant spectral attenuation above 40 MeV in the first few seconds of the burst. This power-law component transitions to a harder spectrum that is consistent with the afterglow emission observed by the XRT at later times. This afterglow component is clearly identifiable in the GBM and BAT light curves as a slowly fading emission component on which the rest of the prompt emission is superimposed. As a result, we are able to observe the transition from internal-shock- to external-shock-dominated emission. We find that the temporal and spectral evolution of the broadband afterglow emission can be well modeled as synchrotron emission from a forward shock propagating into a wind-like circumstellar environment. We estimate the initial bulk Lorentz factor using the observed high-energy spectral cutoff. Considering the onset of the afterglow component, we constrain the deceleration radius at which this forward shock begins to radiate in order to estimate the maximum synchrotron energy as a function of time. We find that even in the LAT energy range, there exist high-energy photons that are in tension with the theoretical maximum energy that can be achieved through synchrotron emission from a shock. These violations of the maximum synchrotron energy are further compounded by the detection of very high-energy (VHE) emission above 300 GeV by MAGIC concurrent with our observations. We conclude that the observations of VHE photons from GRB 190114C necessitates either an additional emission mechanism at very high energies that is hidden in the synchrotron component in the LAT energy range, an acceleration mechanism that imparts energy to the particles at a rate that is faster than the electron synchrotron energy-loss rate, or revisions of the fundamental assumptions used in estimating the maximum photon energy attainable through the synchrotron process.

Original languageEnglish
Article number9
JournalAstrophysical Journal
Volume890
Issue number1
DOIs
Publication statusPublished - 10 Feb 2020
Externally publishedYes

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