Cosmic Clues from Amaterasu: Blazar-driven Ultrahigh-energy Cosmic Rays?

Saikat Das, Srijita Hazra and Nayantara Gupta
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Abstract

The detection of the Amaterasu event of energy 244 EeV by the Telescope Array, one of the most energetic ultrahigh-energy cosmic rays (UHECRs; E ≳ 0.1 EeV) observed to date, invites scrutiny of its potential source. We investigate whether the nearby blazar PKS 1717+177 at redshift z = 0.137, located within of the reconstructed arrival direction, could explain the event under a proton-primary hypothesis. Using a one-zone jet model, we fit the multiwavelength spectral energy distribution of the source, incorporating both leptonic and hadronic cascade emissions from photohadronic interactions inside the jet. Our model supports a cosmic-ray origin of the very-high-energy (εγ ≳ 100 GeV) γ-ray flux and predicts a subdominant neutrino flux, 1 one order of magnitude lower than from TXS 0506+056. Under Lorentz invariance violation, UHECRs escaping the blazar jet above a specific energy can propagate unattenuated over hundreds of Mpc due to an increase in energy loss length for certain parameter choices. In such a scenario, the Amaterasu event can have a plausible origin from this blazar. Our analysis indicates negligible deflection in the Galactic magnetic field, implying a strong extragalactic magnetic field is required. Our findings provide a compelling multimessenger framework linking UHECRs, γ-rays, and neutrinos and motivate targeted searches by current and future high-energy neutrino telescopes during increased γ-ray or X-ray activity of this blazar.
来自天照照的宇宙线索:耀变体驱动的超高能宇宙射线?
望远镜阵列探测到能量为244 EeV的天照事件,这是能量最高的超高能宇宙射线之一(uhecr;到目前为止观测到的E < 0.1 EeV),引起了对其潜在来源的仔细研究。我们研究了位于重建到达方向内红移z = 0.137的附近耀变体PKS 1717+177是否可以在质子初级假说下解释这一事件。利用单区射流模型,我们拟合了光源的多波长光谱能量分布,并结合了射流内部光强子相互作用产生的轻子和强子级联发射。我们的模型支持高能(εγ≥100 GeV) γ射线通量的宇宙射线起源,并预测了一个次优势中微子通量,比TXS 0506+056低一个数量级。在违反洛伦兹不变性的情况下,由于某些参数的选择增加了能量损失长度,逃离耀变体射流的uhecr可以在数百Mpc的范围内不衰减地传播。在这种情况下,天照照事件的起源可能是这个耀变体。我们的分析表明,银河系磁场的偏转可以忽略不计,这意味着需要一个强大的河外磁场。我们的发现提供了一个令人信服的多信使框架,将uhecr、γ射线和中微子联系起来,并激发当前和未来高能中微子望远镜在该耀变体γ射线或x射线活动增加期间进行有针对性的搜索。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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