Department of Physics, National Changhua University of Education, Changhua City, Taiwan.
Extreme Natural Phenomena RIKEN Hakubi Research Team, Cluster of Pioneering Research, RIKEN, Wako, Japan.
Nature. 2024 Feb;626(7999):500-504. doi: 10.1038/s41586-023-07012-5. Epub 2024 Feb 14.
Magnetars are neutron stars with extremely high magnetic fields (≳10 gauss) that exhibit various X-ray phenomena such as sporadic subsecond bursts, long-term persistent flux enhancements and variable rotation-period derivative. In 2020, a fast radio burst (FRB), akin to cosmological millisecond-duration radio bursts, was detected from the Galactic magnetar SGR 1935+2154 (refs. ), confirming the long-suspected association between some FRBs and magnetars. However, the mechanism for FRB generation in magnetars remains unclear. Here we report the X-ray observation of two glitches in SGR 1935+2154 within a time interval of approximately nine hours, bracketing an FRB that occurred on 14 October 2022. Each glitch involved a significant increase in the magnetar's spin frequency, being among the largest abrupt changes in neutron-star rotation observed so far. Between the glitches, the magnetar exhibited a rapid spin-down phase, accompanied by an increase and subsequent decline in its persistent X-ray emission and burst rate. We postulate that a strong, ephemeral, magnetospheric wind provides the torque that rapidly slows the star's rotation. The trigger for the first glitch couples the star's crust to its magnetosphere, enhances the various X-ray signals and spawns the wind that alters magnetospheric conditions that might produce the FRB.
磁星是具有极高磁场(≳10 高斯)的中子星,它们表现出各种 X 射线现象,如偶发性亚秒级爆发、长期持久通量增强和可变自转周期导数。2020 年,从银河系磁星 SGR 1935+2154 探测到了一个快速射电暴(FRB),类似于宇宙中毫秒持续时间的无线电爆发,证实了一些 FRB 与磁星之间的长期关联。然而,磁星中 FRB 产生的机制仍不清楚。在这里,我们报告了在大约 9 小时的时间间隔内对 SGR 1935+2154 的两次磁星爆发的 X 射线观测,这两次磁星爆发都发生在 2022 年 10 月 14 日发生的一次 FRB 之前和之后。每次磁星爆发都涉及到磁星自转频率的显著增加,这是迄今为止观测到的最大的中子星自转突然变化之一。在两次磁星爆发之间,磁星表现出快速的自转减速阶段,伴随着其持久 X 射线发射和爆发率的增加和随后的下降。我们假设,一股强大的、短暂的、磁层风提供了力矩,使恒星的自转迅速减慢。第一次磁星爆发的触发将恒星的外壳与磁层耦合,增强了各种 X 射线信号,并产生了改变磁层条件的风,从而可能产生 FRB。