论文标题

从FRB 20190520b的外源介质中检测到的散射变异性

Scattering variability detected from the circumsource medium of FRB 20190520B

论文作者

Ocker, S. K., Cordes, J. M., Chatterjee, S., Li, D., Niu, C. H., McKee, J. W., Law, C. J., Anna-Thomas, R.

论文摘要

快速无线电爆发(FRB)是毫秒时尺度的无线电瞬变,其起源主要是静脉外的,并且可能涉及高度磁化的紧凑物体。 FRB经历了多径的传播或散射,从沿视线的电离气体中的电子密度波动中的电子密度波动发生。散射观察结果在FRB宿主星系中具有血浆结构,探测了银河系和乳层外湍流,并约束了FRB红移。散射还抑制FRB检测并偏向观察到的FRB种群。我们报告了从重复的FRB 20190520b中检测到散射时间,该散射时间在几分钟到长达几天的时间尺度上的变化高达两倍或更多。在一个值得注意的情况下,散射时间从$ 7.9 \ pm0.4 $ ms到小于3.1 ms($ 95 \%$ pusitive)在2.45 GHz的2.9分钟内。散射时间似乎在爆发之间或分散和旋转测量变化之间不相关。散射变化归因于绕线介质中的动态,不均匀等离子体,并且已经从蟹脉冲中观察到了类似的变化。在这种情况下,散射的频率依赖性可能会偏离用于测量散射的典型幂律。因此,也可以从其他FRB中检测到类似的变化,即使是那些具有不起眼散射的FRB,也可以在FRB环境中提供独特的小规模过程探针。

Fast radio bursts (FRBs) are millisecond-timescale radio transients, the origins of which are predominantly extragalactic and likely involve highly magnetized compact objects. FRBs undergo multipath propagation, or scattering, from electron density fluctuations on sub-parsec scales in ionized gas along the line-of-sight. Scattering observations have located plasma structures within FRB host galaxies, probed Galactic and extragalactic turbulence, and constrained FRB redshifts. Scattering also inhibits FRB detection and biases the observed FRB population. We report the detection of scattering times from the repeating FRB 20190520B that vary by up to a factor of two or more on minutes to days-long timescales. In one notable case, the scattering time varied from $7.9\pm0.4$ ms to less than 3.1 ms ($95\%$ confidence) over 2.9 minutes at 1.45 GHz. The scattering times appear to be uncorrelated between bursts or with dispersion and rotation measure variations. Scattering variations are attributable to dynamic, inhomogeneous plasma in the circumsource medium, and analogous variations have been observed from the Crab pulsar. Under such circumstances, the frequency dependence of scattering can deviate from the typical power-law used to measure scattering. Similar variations may therefore be detectable from other FRBs, even those with inconspicuous scattering, providing a unique probe of small-scale processes within FRB environments.

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