GRB Spectrum from Gradual Dissipation in a Magnetized Outflow
arXiv:2008.10729 · doi:10.1093/mnras/staa2870
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, cm. We consider an ultra-relativistic strongly magnetized outflow with a striped-wind magnetic-field structure undergoing gradual and continuous magnetic energy dissipation at that heats and accelerates the flow, leading to a bulk Lorentz factor , where typically . 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 -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 MeV, for a source at redshift , 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 , and (iv) the 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.
18 pages, 8 figures, Accepted for publication in MNRAS
References in corpus (19)
- The Physics of Gamma-Ray Bursts and Relativistic Jets
- Detection of a Thermal Spectral Component in the Prompt Emission of GRB 100724B
- Prompt GRB emission from gradual energy dissipation
- Temporal Evolution Of Thermal Emission From Relativistically Expanding Plasma
- Prompt emission spectra from the photosphere of a GRB
- Spectral and timing properties of a dissipative GRB photosphere
- Relativistic magnetic reconnection in pair plasmas and its astrophysical applications
- A general scheme for modeling gamma-ray burst prompt emission
- Multiwavelength observations of GRB 110731A: GeV emission from onset to afterglow
- Black-hole jets without large-scale net magnetic flux
- Towards a Better Understanding of the GRB Phenomenon: a New Model for GRB Prompt Emission and its effects on the New Non-Thermal L-E relation
- Detection of Low-energy Breaks in Gamma-Ray Burst Prompt Emission Spectra
- Evidence of two spectral breaks in the prompt emission of gamma ray bursts
- Time-Resolved Spectroscopy of the 3 Brightest and Hardest Short Gamma-Ray Bursts Observed with the FGST Gamma-Ray Burst Monitor
- Poynting flux dominated jets challenged by their photospheric emission
- Radiative striped wind model for gamma-ray bursts
- The Effect of Pair Cascades on the High-Energy Spectral Cutoff in Gamma-Ray Bursts
- Non-thermal Gamma-ray Emission from Delayed Pair Breakdown in a Magnetized and Photon-rich Outflow
- 2D Relativistic MHD Simulations of the Kruskal-Schwarzschild Instability in a Relativistic Striped Wind