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通过激光等离子体加速器的汤姆逊散射产生明亮的阿秒X射线脉冲序列。

Generation of bright attosecond x-ray pulse trains via Thomson scattering from laser-plasma accelerators.

作者信息

Luo W, Yu T P, Chen M, Song Y M, Zhu Z C, Ma Y Y, Zhuo H B

出版信息

Opt Express. 2014 Dec 29;22(26):32098-106. doi: 10.1364/OE.22.032098.

Abstract

Generation of attosecond x-ray pulse attracts more and more attention within the advanced light source user community due to its potentially wide applications. Here we propose an all-optical scheme to generate bright, attosecond hard x-ray pulse trains by Thomson backscattering of similarly structured electron beams produced in a vacuum channel by a tightly focused laser pulse. Design parameters for a proof-of-concept experiment are presented and demonstrated by using a particle-in-cell code and a four-dimensional laser-Compton scattering simulation code to model both the laser-based electron acceleration and Thomson scattering processes. Trains of 200 attosecond duration hard x-ray pulses holding stable longitudinal spacing with photon energies approaching 50 keV and maximum achievable peak brightness up to 10 photons/s/mm/mrad/0.1%BW for each micro-bunch are observed. The suggested physical scheme for attosecond x-ray pulse trains generation may directly access the fastest time scales relevant to electron dynamics in atoms, molecules and materials.

摘要

阿秒X射线脉冲的产生因其潜在的广泛应用而在先进光源用户群体中受到越来越多的关注。在此,我们提出一种全光方案,通过由强聚焦激光脉冲在真空通道中产生的结构相似的电子束的汤姆逊背散射来产生明亮的阿秒硬X射线脉冲序列。通过使用粒子模拟代码和四维激光康普顿散射模拟代码对基于激光的电子加速和汤姆逊散射过程进行建模,给出并演示了概念验证实验的设计参数。观察到持续时间为200阿秒的硬X射线脉冲序列,其纵向间距稳定,光子能量接近50keV,每个微束团的最大可实现峰值亮度高达10光子/秒/毫米/毫弧度/0.1%带宽。所提出的产生阿秒X射线脉冲序列的物理方案可以直接进入与原子、分子和材料中电子动力学相关的最快时间尺度。

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