论文标题

寻找外星高能中微子对应物

The hunt for extraterrestrial high-energy neutrino counterparts

论文作者

Liodakis, I., Hovatta, T., Pavlidou, V., Readhead, A. C. S., Blandford, R. D., Kiehlmann, S., Lindfors, E., Max-Moerbeck, W., Pearson, T. J., Petropoulou, M.

论文摘要

Petaelectronvolt(PEV)天体中微子的起源是我们对高能量宇宙的理解至关重要的。除了冰,海洋和湖泊深处的操作探测器的技术挑战外,现象学挑战还大于引力波的挑战。来源是未知的,难以预测,我们缺乏明确的签名。因此,中微子天文学代表了迄今为止天文学和物理社区面临的最大挑战。可能的中微子来源范围从积聚磁盘和潮汐破坏事件到相对论的喷气机和带有Blazar TXS 〜0506+056最引人注目的关联的相对论喷射和星系簇。自从这种关联以来,已经付出了巨大的努力来证明或反驳喷气机的确是中微子发射器,但无济于事。通过生成模拟的中微子对应物样品,我们探索了检测中微子与活性银河系核的喷气中微子显着相关的潜力。我们发现,鉴于现有的挑战,即使我们最好的实验也无法产生$>3σ$结果。在接下来的几年中,较大的程序只有在最明亮的无线电源而不是所有喷射活跃的银河核是中微子发射器时才能检测到显着的相关性。我们讨论将未来努力转向成功实验所需的必要策略。

The origin of Petaelectronvolt (PeV) astrophysical neutrinos is fundamental to our understanding of the high-energy Universe. Apart from the technical challenges of operating detectors deep below ice, oceans, and lakes, the phenomenological challenges are even greater than those of gravitational waves; the sources are unknown, hard to predict, and we lack clear signatures. Neutrino astronomy therefore represents the greatest challenge faced by the astronomy and physics communities thus far. The possible neutrino sources range from accretion disks and tidal disruption events, to relativistic jets and galaxy clusters with blazar TXS~0506+056 the most compelling association thus far. Since that association, immense effort has been put into proving or disproving that jets are indeed neutrino emitters, but to no avail. By generating simulated neutrino counterpart samples, we explore the potential of detecting a significant correlation of neutrinos with jets from active galactic nuclei. We find that, given the existing challenges, even our best experiments could not have produced a $>3σ$ result. Larger programs over the next few years will be able to detect a significant correlation only if the brightest radio sources, rather than all jetted active galactic nuclei, are neutrino emitters. We discuss the necessary strategies required to steer future efforts into successful experiments.

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