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来自 12 个银河γ射线源的高达 1.4 拍电子伏特的超高能光子。

Ultrahigh-energy photons up to 1.4 petaelectronvolts from 12 γ-ray Galactic sources.

机构信息

Key Laboratory of Particle Astrophysics & Experimental Physics Division & Computing Center, Institute of High Energy Physics, Chinese Academy of Sciences, Beijing, China.

TIANFU Cosmic Ray Research Center, Chengdu, Sichuan, China.

出版信息

Nature. 2021 Jun;594(7861):33-36. doi: 10.1038/s41586-021-03498-z. Epub 2021 May 17.

DOI:10.1038/s41586-021-03498-z
PMID:34002091
Abstract

The extension of the cosmic-ray spectrum beyond 1 petaelectronvolt (PeV; 10 electronvolts) indicates the existence of the so-called PeVatrons-cosmic-ray factories that accelerate particles to PeV energies. We need to locate and identify such objects to find the origin of Galactic cosmic rays. The principal signature of both electron and proton PeVatrons is ultrahigh-energy (exceeding 100 TeV) γ radiation. Evidence of the presence of a proton PeVatron has been found in the Galactic Centre, according to the detection of a hard-spectrum radiation extending to 0.04 PeV (ref. ). Although γ-rays with energies slightly higher than 0.1 PeV have been reported from a few objects in the Galactic plane, unbiased identification and in-depth exploration of PeVatrons requires detection of γ-rays with energies well above 0.1 PeV. Here we report the detection of more than 530 photons at energies above 100 teraelectronvolts and up to 1.4 PeV from 12 ultrahigh-energy γ-ray sources with a statistical significance greater than seven standard deviations. Despite having several potential counterparts in their proximity, including pulsar wind nebulae, supernova remnants and star-forming regions, the PeVatrons responsible for the ultrahigh-energy γ-rays have not yet been firmly localized and identified (except for the Crab Nebula), leaving open the origin of these extreme accelerators.

摘要

宇宙射线能谱在 1 拍电子伏特(PeV;10 电子伏特)以上的延伸表明存在所谓的 PeV 宇宙加速器——将粒子加速到 PeV 能量的宇宙射线工厂。我们需要定位和识别这些物体,以找到银河宇宙射线的起源。电子和质子 PeV 宇宙加速器的主要特征是超高能(超过 100 TeV)γ 辐射。根据在银河系中心探测到的硬能谱辐射延伸到 0.04 PeV(参考文献),已经发现了质子 PeV 宇宙加速器的存在。尽管在银河系平面上的几个物体中已经报道了能量略高于 0.1 PeV 的 γ 射线,但要对 PeV 宇宙加速器进行无偏差识别和深入探索,需要探测能量远高于 0.1 PeV 的 γ 射线。在这里,我们报告了从 12 个超高能 γ 射线源中探测到超过 530 个能量高于 100 太电子伏特、高达 1.4 PeV 的光子,其统计显著性大于七个标准差。尽管在其附近有几个潜在的对应物,包括脉冲星风星云、超新星遗迹和恒星形成区,但负责超高能 γ 射线的 PeV 宇宙加速器尚未被准确地定位和识别(除了蟹状星云),这些极端加速器的起源仍未确定。

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本文引用的文献

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Multiple Galactic Sources with Emission Above 56 TeV Detected by HAWC.高能伽马射线全天空监测器(HAWC)探测到多个发射高于56 TeV的银河系源。
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First Detection of Photons with Energy beyond 100 TeV from an Astrophysical Source.首次从天体物理源探测到能量超过 100 TeV 的光子。
Phys Rev Lett. 2019 Aug 2;123(5):051101. doi: 10.1103/PhysRevLett.123.051101.
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Extended gamma-ray sources around pulsars constrain the origin of the positron flux at Earth.脉冲星周围的扩展伽马射线源限制了地球上正电子通量的起源。
Innovation (Camb). 2022 May 13;3(4):100260. doi: 10.1016/j.xinn.2022.100260. eCollection 2022 Jul 12.
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Regimes of cosmic-ray diffusion in Galactic turbulence.银河系湍流中宇宙射线扩散的机制。
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