Electron acceleration by few-cycle laser pulse with single-wavelength spot size

G. Dudnikova, V. Bychenkov, A. Maksimchuk, G. Mourou, J. Nees, S. G. Bochkarev, V. Vshivkov
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Abstract

Generation of relativistic electrons from the interaction of a laser pulse with a high density plasma foil, accompanied by an underdense preplasma in front of it, has been studied with 2D particle-in-cell (PIC) simulations for pulse duration comparable to a single-cycle and for single-wavelength spot size. The primary mechanism responsible for electron acceleration is identified. Simulations show that the energy of the accelerated electrons has a maximum versus the pulse-duration for relativistic laser intensities. The most effective electron acceleration takes place when the preplasma scale length is comparable to the pulse-duration. Electron distribution functions have been found from PIC simulations. Their tails are well approximated by Maxwellian distributions with a hot temperature in the MeV range.
单波长光斑尺寸的少周期激光脉冲的电子加速
利用二维粒子池(PIC)模拟研究了激光脉冲与高密度等离子体箔相互作用产生的相对论性电子,并在其前面伴有低密度的预等离子体,其脉冲持续时间可与单周期和单波长光斑大小相媲美。确定了导致电子加速的主要机制。模拟结果表明,在相对论激光强度下,加速电子的能量随脉冲持续时间的变化有一个最大值。最有效的电子加速发生在等离子体前尺度长度与脉冲持续时间相当的时候。从PIC模拟中发现了电子分布函数。它们的尾巴很好地近似于麦克斯韦分布,温度在MeV范围内。
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