论文标题

早期的光学排放以支持$γ$ ray爆发中的同步加速器辐射

Early optical emission in support of synchrotron radiation in $γ$-ray bursts

论文作者

Oganesyan, Gor

论文摘要

$γ$ -Ray爆发(GRB)中迅速排放的起源是高度争议的话题。观察到的光谱应该在约束发射区域的位置,磁场强度和加速颗粒的分布中起着至关重要的作用。迅速发射光谱与同步辐射方案的明显不一致导致考虑了更复杂的模型。在GRB光谱中包含软X射线数据(降至0.5 keV)导致其光谱中发现了低能断裂。更重要的是,如果断裂与同步加速器冷却频率相关联,光谱斜率的分布已转向同步辐射方案的预测。我们讨论了最新的研究,该研究系统地将研究范围扩展到了光学域。结果表明,光到γ射线光谱与同步加速器模型一致。此外,已经测试了由热和非热成分制成的广泛使用的经验模型。我们得出的结论是,大多数光谱与同步加速器方案一致,而两组分模型在存在/不存在污染余辉发射的情况下面临很难解释光辐射。我们评论从同步器模型的最佳拟合参数得出的GRB发射区域的参数空间。在基本的单发粒子加速度模型中,它对应于磁场强度($ \ sim $ 10 g)和发射区域的半径($r_γ\ ge 10^{16} $ cm)的相当人为的解决方案。基本模型的可能修改是必须完全一致的图片。

The origin of prompt emission in $γ$-ray bursts (GRBs) is highly debated topic. The observed spectra are supposed to play a crucial role in constraining the location of the emitting region, the strength of the magnetic field and the distribution of the accelerated particles. The apparent inconsistency of the prompt emission spectra with the synchrotron radiation scenario has resulted in considering more complex models. The inclusion of the soft X-ray data (down to 0.5 keV) in GRB spectra have led to the discovery of low-energy breaks in their spectra. More importantly, the distribution of spectral slopes has been shifted towards the prediction of the synchrotron radiation scenario if the break is associated with the synchrotron cooling frequency. We discuss the recent study that systematically extend the range of investigation down to the optical domain. It was shown that the optical-to-gamma-rays spectra are consistent with the synchrotron model. In addition, widely used empirical model made of thermal and non-thermal components has been tested. We conclude that most of the spectra are consistent with the synchrotron scenario while the two-component model faces difficulties to account for the optical radiation in presence/absence of the contaminating afterglow emission. We comment on the parameter space of GRB emitting region derived from the best fit parameters of the synchrotron model. In a basic one-shot particle acceleration model it corresponds to the quite contrived solutions for the magnetic field strength ($\sim$ 10 G) and for the radius of the emitting region ($R_γ\ge 10^{16}$ cm). Possible modifications of the basic model would be necessary to have a fully consistent picture.

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