高能暂现源 · 每日文献综述

HIGH-ENERGY TRANSIENTS · DAILY LITERATURE REVIEW
2026 年 5 月 16 日 星期六 · 数据截至 arXiv / ADS 最新收录日
I.

今日头条

No Breaking · 无突发
今日无通过复核的重大进展

当日 1 篇核心与相关文献均为常规推进,核心 1 篇已按优先级列于下方。

II.

核心文献

1 篇
01
优先级 70 · TDE · 高能暂现天体

AT2019ijn: a fast-rising, slow-decaying blue optical transient with exceptionally bright radio emission

AT2019ijn:快速上升、缓慢衰减且具有极亮射电辐射的蓝色光学暂现源

H. Ding (Department of Physics, Anhui Normal University), X. Shu (Department of Physics, Anhui Normal University), L. Sun (Department of Physics, Anhui Normal University) et al.

原文摘要Abstract

We report the discovery of a peculiar optical transient, AT2019ijn, occurred in the nuclear region of a dwarf galaxy at z=0.273. It rises rapidly to peak at a luminosity of Mg=-21.1 in 5 days, followed by a slow decline over more than a month, during which the optical emission has a persistently high blackbody temperature of T_BB~1.5-1.6x10^4 K. The radio emission is exceptional which peaks at 640 days after optical discovery with a high luminosity of 2x10^31 erg/s/Hz. The peak radio luminosity is at least two orders of magnitude brighter than known radio-bright fast blue optical transients and supernova explosions at similar epochs, but comparable to jetted tidal disruption events. The luminous and long-lasting radio emission with a late-time peak can be explained by an off-axis relativistic jet with a viewing angle of ~40 deg. We discuss possible origins for AT2019ijn and favor a jetted tidal disruption event involving an intermediate-mass black hole of ~10^5 Msun, although a jetted magnetar model cannot be fully ruled out. AT2019ijn represents a new class of relativistic optical transients that highlights the importance of radio surveys for discovering off-axis jetted events.

展开 ▾
AI 综述 AI-generated · 以原文为准
亮点

光学演化打破常规LFBOT分类,射电延迟峰远超已知事件且光度高两个量级,首次揭示离轴相对论喷流在类似暂现源中的存在证据。

脉络与展望

AT2019ijn的快速光学上升与蓝色特征类似LFBOTs,但其缓慢衰减更接近TDEs(Yao+ 2023)。射电亮度和延迟峰与离轴喷流TDEs(如Andreoni+ 2022Cendes+ 2021)一致,表明需要偏离视线方向的相对论喷流。过去对LFBOTs的动力来源多考虑磁星或恒星级黑洞(Margutti+ 2019Coppejans+ 2020),但极高的射电能量更支持中等质量黑洞潮汐瓦解(IMBH TDE)情景(Perley+ 2019Zhang+ 2022)。近期发现的偏核TDEs为IMBH喷流提供了新线索(Lin+ 2018Zhang+ 2025Shu+ 2025)。未来光学与射电协同巡天有望揭示这类新型相对论暂现源的统计性质,并限制喷流产生的物理条件。

预印本 2026-07-13 · 接收 2026-05-16 · 刊出 2026-07-06 · 收录 2026-07-18