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Escaping electrons from intense laser-solid interactions as a function of laser spot size

机译:逃逸出的电子与强激光-固体相互作用作为激光光斑大小的函数

摘要

The interaction of a high-intensity laser with a solid target produces an energetic distribution of electrons that pass into the target. These electrons reach the rear surface of the target creating strong electric potentials that act to restrict the further escape of additional electrons. The measurement of the angle, flux and spectra of the electrons that do escape gives insights to the initial interaction. Here, the escaping electrons have been measured using a differentially filtered image plate stack, from interactions with intensities from mid 1020-1017 W/cm2, where the intensity has been reduced by defocussing to increase the size of the focal spot. An increase in electron flux is initially observed as the intensity is reduced from 4x1020 to 6x1018 W/cm2. The temperature of the electron distribution is also measured and found to be relatively constant. 2D particle-in-cell modelling is used to demonstrate the importance of pre-plasma conditions in understanding these observations.
机译:高强度激光与固体靶的相互作用产生了进入靶的电子的高能分布。这些电子到达目标的后表面,产生强大的电势,以限制其他电子的进一步逸出。对确实逸出的电子的角度,通量和光谱的测量可以洞悉初始相互作用。在这里,逃逸的电子是使用差动滤波的图像板叠层测量的,其强度为1020至1017 W / cm2的强度之间的相互作用,其中通过散焦来减小强度,以增加焦点的大小。最初观察到电子通量的增加,因为强度从4x1020 W / cm2降低到6x1018 W / cm2。电子分布的温度也被测量并且发现是相对恒定的。二维粒子在细胞中的建模用于证明等离子前条件在理解这些观察结果中的重要性。

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