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首页> 外文期刊>Physical review letters >Laser Absorption in Relativistically Underdense Plasmas by Synchrotron Radiation
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Laser Absorption in Relativistically Underdense Plasmas by Synchrotron Radiation

机译:同步辐射在相对论低密度等离子体中的激光吸收

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摘要

A novel absorption mechanism for linearly polarized lasers propagating in relativistically underdense solids in the ultrarelativistic (a ~ 100) regime is presented. The mechanism is based on strong synchrotron emission from electrons reinjected into the laser by the space charge field they generate at the front of the laser pulse. This laser absorption, termed reinjected electron synchrotron emission, is due to a coupling of conventional plasma physics processes to quantum electrodynamic processes in low density solids at intensities above 1022 W/cm~2. Reinjected electron synchrotron emission is identified in 2D QED-particle-in-cell simulations and then explained in terms of ID QED-particle-in-cell simulations and simple analytical theory. It is found that between 1% (at 10~(22) W/cm~2) and 14% (at 8 × 10~(23) W/cm~2) of the laser energy is converted into gamma ray photons, potentially providing an ultraintense future gamma ray source.
机译:提出了一种在超相对论(〜100)条件下在相对论密度不足的固体中传播的线性偏振激光吸收机理。该机制基于电子通过在激光脉冲的前部产生的空间电荷场而重新注入到激光器中的强同步加速器发射。这种激光吸收称为再注入电子同步加速器发射,是由于传统等离子体物理过程与强度在1022 W / cm〜2以上的低密度固体中的量子电动力学过程耦合所致。再注入的电子同步加速器发射在2D QED单元格模拟中得以识别,然后根据ID QED单元格模拟和简单分析理论进行解释。发现在1%(10〜(22)W / cm〜2)和14%(8×10〜(23)W / cm〜2)的激光能量之间转换为伽马射线光子提供未来的超强伽玛射线源。

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