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Cooling of relativistic electron beams in intense laser pulses : chirps and radiation

机译:相对论电子束在强激光脉冲中的冷却:chi和辐射

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摘要

Next-generation high-power laser facilities (such as the Extreme Light Infrastructure) will provide unprecedented field intensities, and will allow us to probe qualitatively new physical regimes for the first time. One of the important fundamental questions which will be addressed is particle dynamics when radiation reaction and quantum effects play a significant role. Classical theories of radiation reaction predict beam cooling in the interaction of a relativistic electron bunch and a high-intensity laser pulse, with final-state properties only dependent on the laser fluence. The observed quantum suppression of this cooling instead exhibits a dependence on the laser intensity directly. This offers the potential for final-state properties to be modified or even controlled by tailoring the intensity profile of the laser pulse. In addition to beam properties, quantum effects will be manifest in the emitted radiation spectra, which could be manipulated for use as radiation sources. We compare predictions made by classical, quasi-classical and stochastic theories of radiation reaction, and investigate the influence of chirped laser pulses on the observed radiation spectra.
机译:下一代大功率激光设备(例如Extreme Light Infrastructure)将提供空前的场强,并使我们能够首次探究定性的新物理状态。当辐射反应和量子效应起重要作用时,将要解决的重要基本问题之一是粒子动力学。辐射反应的经典理论预测相对论电子束和高强度激光脉冲相互作用时的束流冷却,其最终状态特性仅取决于激光能量密度。相反,观察到的这种冷却的量子抑制直接表现出对激光强度的依赖性。这为通过修改激光脉冲的强度轮廓来修改甚至控制最终状态特性提供了可能性。除了光束特性外,量子效应还将在发射的辐射光谱中显现出来,可以对其进行操纵以用作辐射源。我们比较了经典的,准经典的和随机的辐射反应理论所作的预测,并研究了laser激光脉冲对观察到的辐射光谱的影响。

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