Implication from GRB 221009A: Can TeV emission come from the GRB prompt phase?

被引:0
作者
Kai Wang
Zhi-Peng Ma
Ruo-Yu Liu
Yuan-Chuan Zou
Zhuo Li
Zi-Gao Dai
机构
[1] Huazhong University of Science and Technology,Department of Astronomy, School of Physics
[2] Nanjing University,School of Astronomy and Space Science
[3] Ministry of Education,Key Laboratory of Modern Astronomy and Astrophysics
[4] Nanjing University,Department of Astronomy, School of Physics
[5] Peking University,Kavli Institute for Astronomy and Astrophysics
[6] Peking University,Department of Astronomy
[7] University of Science and Technology of China,undefined
来源
Science China Physics, Mechanics & Astronomy | 2023年 / 66卷
关键词
cosmological neutrinos; neutrino astronomy; high energy astrophysics; gamma-ray bursts; cosmic rays;
D O I
暂无
中图分类号
学科分类号
摘要
Recently, the B.O.A.T. (“brightest of all time”) gamma-ray burst, dubbed GRB 221009A, was detected by various instruments. Unprecedentedly, the GRB presented very-high-energy (VHE, energy above 0.1 TeV) gamma-ray emission with energy extending above 10 TeV, as reported by the Large High Altitude Air Shower Observatory (LHAASO). We here demonstrate that the VHE and especially >10TeV emission may originate from the internal hadronic dissipation of the GRB, without the need of invoking any exotic processes as suggested by some previous studies. The possible prompt origin of LHAASO photons may imply the first detection of the GRB prompt phase in the VHE regime. We also discuss the constraints on the properties of the GRB ejecta from multiwavelength and multi-messenger observations, which favors a magnetically dominated GRB ejecta. The suggested Poynting-flux-dominated GRB ejecta in this work supports the Blandford & Znajek (BZ) mechanism as the possible central engine model of GRB, as well as the possible strong magnetic dissipation and acceleration.
引用
收藏
相关论文
共 246 条
  • [1] Ackermann M(2013)undefined Astrophys. J. Suppl. Ser. 209 11-undefined
  • [2] Ajello M(2019)undefined Astrophys. J. 878 52-undefined
  • [3] Tang Q W(2021)undefined Astrophys. J. 922 255-undefined
  • [4] Wang K(2009)undefined Mon. Not. R. Astron. Soc.-Lett. 400 L75-undefined
  • [5] Li L(2008)undefined Mon. Not. R. Astron. Soc. 385 1461-undefined
  • [6] Liu R Y(2010)undefined Mon. Not. R. Astron. Soc. 409 226-undefined
  • [7] Kumar P(2009)undefined Astron. Astrophys. 498 677-undefined
  • [8] Duran R B(2011)undefined Astrophys. J. 739 103-undefined
  • [9] Yu Y W(2011)undefined Astrophys. J. 729 114-undefined
  • [10] Dai Z G(2012)undefined Astrophys. J. 757 115-undefined