三个超活跃重复快速射电暴能量函数的普遍断裂

Q. Wu, F. Y. Wang, Z. Y. Zhao, P. Wang, H. Xu, Y. K. Zhang, D. J. Zhou, J. R. Niu, W. Y. Wang, S. X. Yi, Z. Q. Hua, S. B. Zhang, J. L. Han, W. W. Zhu, K. J. Lee, D. Li, X. F. Wu, Z. G. Dai and B. Zhang
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摘要

快速射电暴(frb)是发生在宇宙距离上的毫秒级脉冲,起源神秘。观测表明,至少有一些快速射电暴是由磁星产生的。所有磁驱动的快速射电暴模型都需要一些触发机制,其中最常见的是中子星地壳的破裂,这被称为星震。然而,到目前为止,还没有确凿的证据支持这种猜测。在这里,我们报告了三个最活跃的重复快速射电暴的能量函数,它们显示了1038 erg左右的普遍断裂。这种断裂类似于地震的频率-震级关系。在磁星模型中由星震触发的快速射电暴的框架内,可以很好地理解这种断裂,以及它上面和下面幂律指数的变化。弱快速射电暴的种子既可以生长在磁星表面,也可以生长在地壳深处。相比之下,强快速射电暴的触发受到地壳厚度的限制,强快速射电暴的种子只能在地表生长。这种维度上的差异导致了从弱到强快速射电暴尺度特性的中断,发生在星震穿透深度等于地壳厚度的地方。我们的结果,连同这些快速射电暴类似地震的时间特性,有力地支持了快速射电暴是由星震触发的观点,为研究中子星地壳的物理特性提供了一个新的机会。
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A Universal Break in Energy Functions of Three Hyperactive Repeating Fast Radio Bursts
Fast radio bursts (FRBs) are millisecond-duration pulses occurring at cosmological distances with a mysterious origin. Observations show that at least some FRBs are produced by magnetars. All magnetar-powered FRB models require some triggering mechanisms, among which the most popular is the cracking of the crust of a neutron star, which is called a starquake. However, so far there has been no decisive evidence for this speculation. Here we report the energy functions of the three most active repeating FRBs, which show a universal break around 1038 erg. Such a break is similar to that of the frequency–magnitude relationship of earthquakes. The break, and the change in the power-law indices below and above it, can be well understood within the framework of FRBs triggered by starquakes in the magnetar models. The seed of weak FRBs can grow both on the magnetar surface and in the deeper crust. In contrast, the triggering of strong FRBs is confined by the crustal thickness, and the seed of strong FRBs can only grow on the surface. This difference in dimensionality causes a break in the scaling properties from weak to strong FRBs, occurring at a point where the penetration depth of starquakes equals the crustal thickness. Our result, together with the earthquake-like temporal properties of these FRBs, strongly supports the idea that FRBs are triggered by starquakes, providing a new opportunity to study the physical properties of the crust of a neutron star.
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