High energy laser-wakefield collider with synchronous acceleration

C. Chiu, S. Cheshkov, T. Tajima
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引用次数: 14

Abstract

A recent study on a high energy accelerator system which involves multistage laser wakefield acceleration shows that the system is very sensitive to jitters due to misalignment between the beam and the wakefield. In particular, the effect of jitters in the presence of a strong focusing wakefield and initial phase space spread of the beam leads to severe emittance degradation of the beam. One way to improve the emittance control is to mitigate the wakefield by working with a plasma channel. However, there are limitations in this approach. Our present investigation does not involve a plasma channel. Instead of averaging over the full phase range of the quarter-wave acceleration, we treat the phase range as a variable. We have found that, for a fixed final acceleration energy and a small phase slip, the final emittance is inversely proportional to the total number of stages. This leads us to consider an accelerator system which consists of superunits, where each superunit consists of closely spaced short tubes, or chips, with the wakefield of each chip being created by an independent laser pulse. There is a relatively large gap between adjacent superunits. With this arrangement the beam electrons are accelerated with a small phase slip; i.e., the phase of the beam is approximately synchronous with respect to the wakefield. This system is designed to have resilience against jitters. It has its practical limitations. We also consider a “horn model” with an exact synchronous acceleration based on a scheme suggested by Katsouleas. Computer simulation of both the chip model and the horn model confirms an expected sinc 3 2 law for emittance degradation in the small phase angle region. Thus the choice of a small loading phase together with a small phase slip provides another important ingredient in controlling emittance degradation.
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同步加速高能激光尾流场对撞机
最近对高能加速器系统的研究表明,由于光束与尾流场之间的不对准,系统对抖动非常敏感。特别是,在强聚焦尾流场和光束初始相空间扩散的情况下,抖动的影响会导致光束的发射度严重下降。改善发射度控制的一种方法是通过使用等离子体通道来减轻尾流场。然而,这种方法也有局限性。我们目前的研究不涉及等离子体通道。我们不是对四分之一波加速度的整个相位范围求平均值,而是将相位范围视为一个变量。我们发现,对于固定的最终加速度能量和较小的相滑,最终发射度与总级数成反比。这导致我们考虑一个由超单元组成的加速器系统,其中每个超单元由紧密间隔的短管或芯片组成,每个芯片的尾流场由一个独立的激光脉冲产生。相邻的超单元之间有一个相对较大的间隙。在这种布置下,电子束以较小的相位滑移加速;也就是说,光束的相位相对于尾流场近似同步。这个系统被设计成具有抗抖动的弹性。它有其实际的局限性。我们还考虑了基于Katsouleas提出的方案的具有精确同步加速度的“喇叭模型”。通过对芯片模型和喇叭模型的计算机仿真,证实了在小相角区域发射度衰减的自32定律。因此,选择小的加载相位和小的相差是控制发射度退化的另一个重要因素。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
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审稿时长
3-8 weeks
期刊介绍: Physical Review Special Topics - Accelerators and Beams (PRST-AB), is a peer reviewed, purely electronic journal, distributed without charge to readers and funded by contributions from national laboratories. It covers the full range of accelerator science and technology: subsystem and component technologies, beam dynamics; accelerator applications; and design, operation, and improvement of accelerators used in science and industry. This includes accelerators for high-energy and nuclear physics, synchrotron radiation production, spallation neutron sources, medical therapy, and intense beam applications.
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