Temporal Evolution Of Thermal Emission From Relativistically Expanding Plasma
arXiv:0802.0725 · doi:10.1086/588136
Abstract
Propagation of photons in relativistically expanding plasma outflows, characterized by steady Lorentz factor Gamma is considered. Photons that are injected in regions of high optical depth are advected with the flow until they escape at the photosphere. Below the photosphere, the photons are coupled to the plasma via Compton scattering. I show here, that as a result of the slight misalignment of the scattering electrons velocity vectors, the (local) comoving photon energy decreases with radius as epsilon'(r) ~ r^{-2/3}. This mechanism dominates the photon cooling in scenarios of faster adiabatic cooling of the electrons. I then show that the photospheric radius of a relativistically expanding plasma wind strongly depends on the angle to the line of sight, theta. For theta <~ 1/Gamma, r_{ph} is theta independent, while for theta >~ 1/Gamma, r_{ph} ~ theta^2. I show that the theta dependence of the photosphere implies that for flow parameters characterizing GRBs, thermal photons originating from below the photosphere can be observed up to tens of seconds following the inner engine activity decay. I calculate the probability density function P(r,theta) of a thermal photon to escape the plasma at radius r and angle theta. Using this function, I show that following the termination of the internal photon injection mechanism, the thermal flux decreases as F_{BB}^{ob.} ~ t^{-2}, and that the decay of the photon energy with radius results in a power law decay of the observed temperature, T^{ob.}(t) ~ t^{-2/3} at early times, which changes to t^{-1/2} later. Detailed numerical results are in very good agreement with the analytical predictions. I discuss the consequences of this temporal behavior in view of the recent evidence for a thermal emission component observed during the prompt emission phase of GRBs.
Typo corrected; Accepted for publication in ApJ
References in corpus (3)
Cited by in corpus (23)
- The Physics of Gamma-Ray Bursts and Relativistic Jets
- The Internal-Collision-Induced Magnetic Reconnection and Turbulence (ICMART) Model of Gamma-Ray Bursts
- A Comprehensive Analysis of Fermi Gamma-Ray Burst Data. I. Spectral Components and Their Possible Physical Origins of LAT/GBM GRBs
- Quasi-blackbody component and radiative efficiency of the prompt emission of gamma-ray bursts
- Very high efficiency photospheric emission in long duration gamma-ray bursts
- Time-Resolved Spectroscopy of the 3 Brightest and Hardest Short Gamma-Ray Bursts Observed with the FGST Gamma-Ray Burst Monitor
- Thermal Radiation from GRB Jets
- Poynting flux dominated jets challenged by their photospheric emission
- Spectral evolution in gamma-ray bursts: predictions of the internal shock model and comparison to observations
- Evidence for jet launching close to the black hole in GRB 101219B - a Fermi GRB dominated by thermal emission
- Monte Carlo simulations of the photospheric emission in GRBs
- Modeling the high-energy emission in GRB 110721A and implications on the early multiwavelength and polarimetric observations
- Interpretation and implication of the non-detection of GeV spectrum excess by Fermi gamma-ray Space Telescope in most GRBs
- Emission from accelerating jets in gamma-ray bursts: Radiation dominated flows with increasing mass outflow rates
- Non-dissipative photospheres in GRBs: Spectral appearance in the Fermi/GBM catalogue
- Accounting for the XRT early steep decay in models of the prompt GRB emission
- A Monte Carlo Radiation Transfer Study of Photospheric Emission in Gamma Ray Bursts
- Numerical models of blackbody-dominated gamma-ray bursts -- II. Emission properties
- Testing a model for subphotospheric dissipation in GRBs: fits to Fermi data constrain the dissipation scenario
- Are GRB Blackbodies an Artifact of Spectral Evolution?
- Random walks and effective optical depth in relativistic flow
- Broadening of the thermal component of the prompt GRB emission due to rapid temperature evolution
- Plasmas in Gamma-Ray Bursts: particle acceleration, magnetic fields, radiative Processes and environments