State Key Laboratory of High Field Laser Physics, Shanghai Institute of Optics and Fine Mechanics, Chinese Academy of Sciences, P.O. Box 800-211, Shanghai 201800, China.
Phys Rev Lett. 2010 Jul 9;105(2):025001. doi: 10.1103/PhysRevLett.105.025001. Epub 2010 Jul 8.
By particle-in-cell simulation and analysis, we propose a plasma approach to generate a relativistic chirped pulse based on a laser-foil interaction. When two counterpropagating circularly polarized pulses interact with an overdense foil, the driving pulse (with a larger laser field amplitude) will accelerate the whole foil to form a double-layer structure, and the scattered pulse (with a smaller laser field amplitude) is reflected by this flying layer. Because of the Doppler effect and the varying velocity of the layer, the reflected pulse is up-shifted for frequency and chirped; thus, it could be compressed to a nearly single-cycled relativistic laser pulse with a short wavelength. Simulations show that a nearly single-cycled subfemtosecond relativistic pulse can be generated with a wavelength of 0.2 μm after dispersion compensation.
通过粒子模拟和分析,我们提出了一种基于激光-薄膜相互作用的等离子体方法来产生相对论啁啾脉冲。当两个反向传播的圆偏振脉冲与过密薄膜相互作用时,驱动脉冲(具有更大的激光场幅度)将加速整个薄膜形成双层结构,而散射脉冲(具有较小的激光场幅度)则被这个飞行层反射。由于多普勒效应和层的变化速度,反射脉冲的频率向上移动并产生啁啾;因此,它可以被压缩到具有短波长的几乎单周期相对论激光脉冲。模拟结果表明,经过色散补偿后可以产生波长为 0.2μm 的近单周期亚飞秒相对论脉冲。