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Relativistic Doppler-boosted γ-rays in High Fields

机译:高场中相对论多普勒增强的γ射线

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摘要

The relativistic Doppler effect is one of the most famous implications of the principles of special relativity and is intrinsic to moving radiation sources, relativistic optics and many astrophysical phenomena. It occurs in the case of a plasma sail accelerated to relativistic velocities by an external driver, such as an ultra-intense laser pulse. Here we show that the relativistic Doppler effect on the high energy synchrotron photon emission (~10 MeV), strongly depends on two intrinsic properties of the plasma (charge state and ion mass) and the transverse extent of the driver. When the moving plasma becomes relativistically transparent to the driver, we show that the γ-ray emission is Doppler-boosted and the angular emission decreases; optimal for the highest charge-to-mass ratio ion species (i.e. a hydrogen plasma). This provides new fundamental insight into the generation of γ-rays in extreme conditions and informs related experiments using multi-petawatt laser facilities.
机译:相对论多普勒效应是狭义相对论原理最著名的含义之一,它是移动的辐射源,相对论光学和许多天体物理学现象的固有特征。在等离子帆被外部驱动器(例如超强激光脉冲)加速到相对论速度的情况下,会发生这种情况。在这里,我们表明相对论多普勒效应对高能同步加速器光子发射(〜10 ^ MeV)的影响,在很大程度上取决于等离子体的两个固有特性(电荷态和离子质量)以及驱动器的横向范围。当运动的等离子体相对于驾驶员变得相对透明时,我们表明γ射线发射是多普勒增强的,并且角度发射减小;最适合于最高的质荷比离子物种(即氢等离子体)。这为在极端条件下产生γ射线提供了新的基础知识,并为使用多PB激光设备的相关实验提供了依据。

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