论文标题

在潮汐破坏事件候选人中,铁排放对中央爆发的非凡响应

An Extraordinary Response of Iron Emission to the Central Outburst in a Tidal Disruption Event Candidate

论文作者

He, Zhicheng, Jiang, Ning, Wang, Tinggui, Liu, Guilin, Sun, Mouyuan, Guo, Hengxiao, Shen, Lu, Cai, Zhenyi, Shu, Xinwen, Sheng, Zhenfeng, Liang, Zhixiong, Xu, Youhua

论文摘要

了解\ feII \发射的起源很重要,因为构建主动银核(AGN)的主要序列至关重要。尽管观察和理论上的努力数十年,但光学铁排放区域的位置以及导致\ feII \强度与黑洞积聚率之间正相关的机制仍然是开放的问题。在这封信中,我们报告了P​​S1-10ADI中心爆发的光学\ feii \响应,这是一个候选的潮汐破坏事件(TDE),在AGN中以$ z = 0.203 $进行,引起了广泛关注。我们第一次观察到,在其中心光度的上升阶段\ feII \响应比在下降阶段明显更为突出,显示出滞后作用。当中央发动机的发光度增加时,我们将这种滞后作用解释为在圆环内表面的灰尘晶粒逐渐升华为气体。这是从升华的灰尘中释放出来的铁元件,显然会导致观察到的\ feII \发射。这种解释以及我们观察到的\ hb \发射的反应较弱,自然解释了相对\ feii \强度作为爱丁顿比率的示踪剂的适用性。此外,该来源的光学铁发射使\ feii \ time落后于潜在的“标准蜡烛”,具有宇宙学的影响。

Understanding the origin of \feii\ emission is important because it is crucial to construct the main sequence of Active Galactic Nuclei (AGNs). Despite several decades of observational and theoretical effort, the location of the optical iron emitting region and the mechanism responsible for the positive correlation between the \feii\ strength and the black hole accretion rate remain open questions as yet. In this letter, we report the optical \feii\ response to the central outburst in PS1-10adi, a candidate tidal disruption event (TDE) taking place in an AGN at $z = 0.203$ that has aroused extensive attention. For the first time, we observe that the \feii\ response in the rising phase of its central luminosity is significantly more prominent than that in the decline phase, showing a hysteresis effect. We interpret this hysteresis effect as a consequence of the gradual sublimation of the dust grains situating at the inner surface of the torus into gas when the luminosity of the central engine increases. It is the iron element released from the sublimated dust that contributes evidently to the observed \feii\ emission. This interpretation, together with the weak response of the \hb\ emission as we observe, naturally explains the applicability of relative \feii\ strength as a tracer of the Eddington ratio. In addition, optical iron emission of this origin renders the \feii\ time lag a potential "standard candle" with cosmological implications.

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