English

GRB Spectrum from Gradual Dissipation in a Magnetized Outflow

High Energy Astrophysical Phenomena 2020-09-30 v2

Abstract

Modeling of gamma-ray burst (GRB) prompt emission spectra sometimes requires a (quasi-) thermal spectral component in addition to the Band function. In photospheric emission models, a prominent thermal component broadened by sub-photospheric dissipation is expected to be released at the photospheric radius, rph1012r_{\rm ph}\sim10^{12}\,cm. We consider an ultra-relativistic strongly magnetized outflow with a striped-wind magnetic-field structure undergoing gradual and continuous magnetic energy dissipation at r<rsr<r_s that heats and accelerates the flow, leading to a bulk Lorentz factor Γ(r)=Γmin[1,(r/rs)1/3]\Gamma(r)=\Gamma_\infty\min[1,(r/r_s)^{1/3}], where typically rph<rsr_{\rm ph}<r_s. Similar dynamics and energy dissipation rates are also expected in highly-variable magnetized outflows without stripes/field-reversals. Two modes of particle energy injection are considered: (a) power-law electrons, e.g. accelerated by magnetic reconnection, and (b) continuous distributed heating of all electrons (and e±e^\pm-pairs), e.g. due to MHD instabilities. Time-resolved energy spectra are obtained using a numerical code that evolves coupled kinetic equations for a photon-electron-positron plasma. We find that (i) the thermal component peaks at (1+z)Epk0.21(1+z)E_{\rm pk}\sim0.2-1\,MeV, for a source at redshift zz, and becomes subdominant if the total injected energy density exceeds the thermal one, (ii) power-law electrons cool mainly by synchrotron emission whereas mildly relativistic and almost monoenergetic electrons in the distributed heating scenario cool by Comptonization on thermal peak photons, (iii) both scenarios can yield a low-energy break at EbrEthE_{\rm br}\approx E_{\rm th}, and (iv) the 0.5(1+z)10.5(1+z)^{-1}\,keV X-ray emission is suppressed in the power-law injection case, but it is expected for the distributed heating scenario. Energy-dependent linear polarization can differentiate between the two energy injection cases.

Keywords

Cite

@article{arxiv.2008.10729,
  title  = {GRB Spectrum from Gradual Dissipation in a Magnetized Outflow},
  author = {Ramandeep Gill and Jonathan Granot and Paz Beniamini},
  journal= {arXiv preprint arXiv:2008.10729},
  year   = {2020}
}

Comments

18 pages, 8 figures, Accepted for publication in MNRAS

R2 v1 2026-06-23T18:04:40.405Z