虹膜引导反向自由电子激光微束实验的仿真

J. Frederico, G. Gatti, S. Reiche, J. Rosenzweig, R. Tikhoplav
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摘要

本文介绍了各种物理效应的详细计算检查,这些物理效应进入了一种创新的方法,用于逆自由电子激光(IFEL)加速和微束实验,包括使用虹膜来引导高功率激光束。在ifel中,使用长波长的衍射激光器有很大的优势,它的功率也很高。由于这种情况对最终聚焦光学器件提出了挑战,因此必须考虑导光,目前的方案要么损耗太大(在金属波导中),要么无法支持高场(如在介电波导中)。因此,我们不得不研究另一种方案,即利用周期性放置的金属虹膜的衍射效应,这些金属虹膜的内径位于相对较低的视场区域。我们将在下面对该方案中与激光束相关的波动动力学进行计算分析。然后,我们继续将这种类型的圆极化电磁辐射场整合到加州大学洛杉矶分校海王星实验室正在建造的螺旋波动器内部的光束动力学自洽模拟中。利用这一集成工具,我们研究了相对论性电子束在激光波长处引起的微聚束的程度。最后,我们研究了光束在IFEL相互作用后的传播,包括光束自作用力(单组分等离子体)效应,以预测基频(激光)微束的水平及其在检测器上使用相干跃迁辐射观察到的谐波。
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Simulation of an iris-guided inverse free-electron laser micro-bunching experiment
This paper presents a detailed computational examination of various physical effects that enter into an innovative approach to inverse free-electron laser (IFEL) acceleration and microbunching experiments, involving use of irises to guide the high power laser beam. In IFELs, there is a great advantage to using long wavelength, and thus diffractive lasers, which are also quite high power. As this scenario presents challenges to the final focusing optics, one must consider guiding, which for present schemes is either too lossy (in metallic guides), or incapable of supporting high fields (as in dielectric guides). Hence we are driven to examine an alternative scheme, that of using the effects of diffraction off of periodically placed metallic irises which have an inner diameter in a relatively low field region. We present below a computational analysis of the wave dynamics associated with the laser beam in this scheme. We then proceed to integrate this type of circularly polarized electromagnetic radiation field into a self- consistent simulation of beam dynamics inside of a helical undulator under construction at the UCLA Neptune Laboratory inverse free-electron laser. With this integrated tool, we then study the degree of microbunching bunching at the laser optical wavelength induced in a relativistic electron beam. Finally, we study the propagation of the beam after the IFEL interaction, including beam self-force (single component plasma) effects, to predict the level of microbunching at the fundamental (laser) frequency and its harmonics that are observed at a detector using coherent transition radiation.
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