Origin of the break in the cosmic-ray electron plus positron spectrum at ~ 1 TeV

Satyendra Thoudam
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Abstract

Recent measurements of the cosmic-ray electron plus positron spectrum by several experiments have confirmed the presence of a break at $\sim\,1$ TeV. The origin of the break is still not clearly understood. In this work, we explore different possibilities for the origin which include an electron source spectrum with a broken power-law, a power-law with an exponential or super-exponential cut-offs and the absence of potential nearby cosmic-ray sources. Based on the observed electron plus positron data from the DAMPE and the H.E.S.S experiments, and considering supernova remnants as the main sources of cosmic rays in the Galaxy, we find statistical evidence in favour of the scenario with a broken power-law source spectrum with the best-fit source parameters obtained as $\Gamma=2.39$ for the source spectral index, $E_0\approx 1.6$ TeV for the break energy and $f=1.59\times 10^{48}$ ergs for the amount of supernova kinetic energy injected into cosmic-ray electrons. Such a power-law break in the spectrum has been predicted for electrons confined inside supernova remnants after acceleration via diffusive shock acceleration process, and also indicated by the multi-wavelength study of supernova remnants. All these evidences have shown that the observed spectral break provides a strong indication of a direct link between cosmic-ray electrons and their sources. Our findings further show that electrons must undergo spectral changes while escaping the source region in order to reconcile the difference between the spectral index of electrons observed inside supernova remnants and that obtained from Galactic cosmic-ray propagation studies.
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约 1 TeV 处宇宙射线电子和正电子频谱断裂的起源
最近通过多次实验对宇宙射线电子和正电子谱的测量证实,在$\sim\,1$ TeV存在断裂。在这项工作中,我们探索了不同的可能性,包括具有断裂幂律的电子源谱、具有指数或超指数截止的幂律以及附近没有潜在的宇宙射线源。根据DAMPE和H.E.S.S实验观测到的电子和正电子数据,并考虑到超新星残余物是银河系中宇宙射线的主要来源,我们发现统计证据支持具有破碎幂律源谱的方案,其最佳拟合源参数为:$\Gamma=2.39$为源光谱指数,$E_0\approx1.6$ TeV为断裂能量,$f=1.59\times 10^{48}$ ergs为注入宇宙射线电子的超新星动能。这种谱线上的幂律断裂是超新星剩余物内部的电子通过扩散冲击加速后的预言,也是超新星剩余物多波长研究的结果。所有这些证据都表明,观测到的光谱断裂有力地证明了宇宙射线电子与其来源之间的直接联系。我们的发现进一步表明,电子在逃离源区时必须发生光谱变化,以便协调在超新星残余物内部观测到的电子光谱指数与银河宇宙射线传播研究中获得的电子光谱指数之间的差异。
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