Delayed Emission from Luminous Blue Optical Transients in Black Hole Binary Systems

Davide Lazzati, Rosalba Perna, Taeho Ryu and Katelyn Breivik
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Abstract

At least three members of the recently identified class of fast luminous blue optical transients show evidence of late-time electromagnetic activity in great excess of what was predicted by an extrapolation of the early time emission. In particular, AT2022tsd displays fast, bright optical fluctuations approximately a month after the initial detection. Here we propose that these transients are produced by exploding stars in black hole binary systems and that the late-time activity is due to the accretion of clumpy ejecta onto the companion black hole. We derive the energetics and timescales involved, compute the emission spectrum, and discuss whether the ensuing emission is diffused or not in the remnant. We find that this model can explain the observed range of behaviors for reasonable ranges of the orbital separation and the ejecta velocity and clumpiness. Close separation and clumpy, high-velocity ejecta result in bright variable emission, as seen in AT2022tsd. A wider separation and smaller ejecta velocity, conversely, give rise to fairly constant emission at a lower luminosity. We suggest that high-cadence, simultaneous, panchromatic monitoring of future transients should be carried out to better understand the origin of the late emission and the role of binarity in the diversity of explosive stellar transients.
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黑洞双星系统中蓝色发光瞬态的延迟发射
在最近发现的一类快速发光蓝色光学瞬变体中,至少有三个成员显示出晚期电磁活动的证据,大大超过了对早期发射的外推预测。特别是,AT2022tsd 在首次探测到大约一个月后显示出快速、明亮的光学波动。在这里,我们提出这些瞬变是由黑洞双星系统中爆炸的恒星产生的,而晚期活动则是由于团块状抛射物吸积到伴生黑洞上造成的。我们推导了所涉及的能量和时间尺度,计算了发射光谱,并讨论了随之而来的发射是否会在残余物中扩散。我们发现,这个模型可以解释在合理的轨道分离和喷射速度及团块度范围内观测到的一系列行为。较近的分离距离和团块状的高速喷出物会导致明亮的可变发射,就像在AT2022tsd中看到的那样。反之,较宽的间隔和较小的喷射速度会在较低的光度下产生相当稳定的发射。我们建议对未来的瞬变现象进行高密度、同步、全色监测,以更好地了解晚期发射的起源以及二元性在爆炸性恒星瞬变多样性中的作用。
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