Radio Follow-Up of Einstein Probe Fast X-Ray Transients
爱因斯坦探针快速X射线暂现源的射电跟踪观测
Fast X-ray transients (FXTs) are brief, luminous bursts of soft X-ray emission whose physical origins remain uncertain. The Einstein Probe (EP) mission has recently enabled prompt discovery of these events, providing opportunities for rapid multi-wavelength follow-up. We present a coordinated radio observing campaign targeting 20 FXTs detected by the EP in 2024. The core consists of 59 epochs with the Allen Telescope Array (ATA), sampling post-burst timescales from $\sim$1 to $\sim$65 days and reaching typical $3σ$ sensitivities of 0.6--1.5\,mJy across 1--8\,GHz. Two FXTs---EP240315a and EP241021a---have radio counterparts. For EP241021a, AMI-LA monitoring at 15.5\,GHz reveals a light curve peaking at $\sim$30 days with $F_ν\approx1.0$\,mJy; equipartition analysis implies a Newtonian equipartition energy of $\sim3\times10^{49}$\,erg and a mildly relativistic on-axis solution with $Γ_{\rm on}\approx1.3$. Multi-frequency modelling of EP240315a, combining new VLA measurements with published MeerKAT, ATCA, and eMERLIN data, indicates highly relativistic early emission ($Γ\gtrsim3$) that decelerates with time, consistent with jetted outflow. The detections and ATA non-detections span luminosities overlapping the brightest GRB and relativistic tidal disruption event (TDE) afterglows, suggesting FXTs comprise a heterogeneous population including both relativistic and non-relativistic explosions. Under a GRB-like redshift prior, our $3σ$ ATA limits correspond to observer-frame specific-luminosity thresholds of $\sim10^{32}$--$10^{33}\,\mathrm{erg\ s^{-1}\ Hz^{-1}}$; for nearby events ($z\lesssim0.2$), $L_ν\lesssim10^{30\text{--}31}\,\mathrm{erg\ s^{-1}\ Hz^{-1}}$. Planned ATA upgrades and next-generation arrays (SKA, DSA, ngVLA) will enable sensitive, population-level radio studies of the FXT radio sky.
展开 ▾首次对EP-FXT大样本进行统一射电监测,揭示了两个射电余辉分别对应高度相对论性喷流(EP240315a)和温和相对论性外流(EP241021a),有力支持了FXTs群体的异质性;同时利用GRB红移先验计算了观测者系特定光度上限与探测分数,为未来的统计研究奠定了重要基础。
快速X射线暂现源(FXTs)的物理起源长期存在争议(Quirola-Vásquez+ 2022)。爱因斯坦探针(EP)的启用(Yuan+ 2022)使即时发现与多波段跟踪成为现实,并催生了数个早期射电对应体的报道(Gillanders+ 2024;Bright+ 2025)。本研究对20个EP-FXT进行了迄今最大规模的统一射电跟踪,将探测上限与已知GRB余辉(Chandra+ 2012)对比,并通过均分方法(Matsumoto+ 2023)对EP240315a和EP241021a的喷流能量与速度进行约束,揭示出FXTs包含高度相对论性和温和相对论性两种爆发渠道。未来,随着ATA升级以及SKA、DSA、ngVLA等新一代阵列的投入,射电灵敏度将大幅提升,有望将个案研究拓展为对大样本的统计普查,最终明确不同子类的前身星性质。
预印本 2026-07-29 · 刊出 2026-07-23 · 收录 2026-07-31