English

GRB 190114C: Fireball Energy Budget and Radiative Efficiency Revisited

High Energy Astrophysical Phenomena 2025-01-07 v2

Abstract

The jet composition of gamma-ray bursts (GRBs), as well as how efficiently the jet converts its energy to radiation, are long-standing problems in GRB physics. Here, we reported a comprehensive temporal and spectral analysis of the TeV-emitting bright GRB 190114C. Its high fluence (\sim 4.4×\times104^{-4} erg cm2^{-2}) allows us to conduct the time-resolved spectral analysis in great detail and study their variations down to a very short time-scale (\sim0.1 s) while preserving a high significance. Its prompt emission consists of three well-separated pulses. The first two main pulses (P1P_1 and P2P_2) exhibit independently strong thermal components, starting from the third pulse (P3P_3) and extending to the entire afterglow, the spectra are all nonthermal, the synchrotron plus Compton upscattering model well interprets the observation. By combining the thermal (P1P_1 and P2P_2) and the nonthermal (P3P_3) observations based on two different scenarios (global and pulse properties) and following the method described in Zhang et al., we measure the fireball parameters and GRB radiative efficiency with little uncertainties for this GRB. A relevantly high GRB radiative efficiency is obtained based on both the global and pulse properties, suggesting that if GRBs are powered by fireballs, the efficiency can sometimes be high. More interestingly, though the observed parameters are individually different (e.g., the amount of mass loading MM), the radiative efficiency obtained from P1P_1 (ηγ=36.0±6.5%\eta_\gamma=36.0\pm6.5\%) and P2P_2 (ηγ=41.1±1.9%\eta_\gamma=41.1\pm1.9\%) is roughly the same, which implies that the central engine of the same GRB has some common properties.

Keywords

Cite

@article{arxiv.2302.06116,
  title  = {GRB 190114C: Fireball Energy Budget and Radiative Efficiency Revisited},
  author = {Liang Li and Yu Wang},
  journal= {arXiv preprint arXiv:2302.06116},
  year   = {2025}
}

Comments

18 pages, 3 figures, 2 tables, accepted for publication in The Astrophysical Journal