论文标题
通过宽带早期的余辉发射魔术伽马射线爆发GRB 190114c探测粒子加速
Probing Particle Acceleration through Broadband Early Afterglow Emission of MAGIC Gamma-Ray Burst GRB 190114C
论文作者
论文摘要
主要的大气伽马成像Cherenkov望远镜(魔术)检测到GRB 190114C的伽马射线余辉,这可以约束减震等离子体发射非热发射的显微参数。为了关注此事件的早期余辉,我们使用时间依赖的代码以恒定和风的双层介质来模拟频谱和多波长光曲线。我们的结果表明,最高能量的电子加速度时间尺度可能比陀螺仪的20倍重现GEV伽马射线通量及其光谱指数,其光谱指数由{\ it fermi}报道。这对微生介导的冲击的加速度效率产生了有趣的限制。我们还限制了非热电子$ f _ {\ rm e} $的数量分数和热电子温度。早期的光学发射可以通过$ f _ {\ rm e} \ Lessim 0.01 $的热同步器发射来解释。另一方面,X射线光曲线限制了从质子到热电子的有效能量传递,如果热电子的能量分数大于$ \ sim10 $ \%,则需要$ f _ {\ rm e} \ sim1 $。这项工作中获得的参数约束为用相对论冲击探测血浆物理学的重要线索。
Major Atmospheric Gamma Imaging Cherenkov Telescopes (MAGIC) detected the gamma-ray afterglow of GRB 190114C, which can constrain microscopic parameters of the shock-heated plasma emitting non-thermal emission. Focusing on the early afterglow of this event, we numerically simulate the spectrum and multi-wavelength light curves with constant and wind-like circumstellar medium using a time-dependent code. Our results show that the electron acceleration timescale at the highest energies is likely shorter than 20 times the gyroperiod to reproduce the GeV gamma-ray flux and its spectral index reported by {\it Fermi}. This gives an interesting constraint on the acceleration efficiency for Weibel-mediated shocks. We also constrain the number fraction of non-thermal electrons $f_{\rm e}$, and the temperature of the thermal electrons. The early optical emission can be explained by the thermal synchrotron emission with $f_{\rm e} \lesssim 0.01$. On the other hand, the X-ray light curves restrict efficient energy transfer from protons to the thermal electrons, and $f_{\rm e}\sim1$ is required if the energy fraction of the thermal electrons is larger than $\sim10$\%. The parameter constraints obtained in this work give important clues to probing plasma physics with relativistic shocks.