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Conceptual design of a laser-plasma accelerator driven free-electron laser demonstration experiment

机译:激光等离子体加速器驱动的自由电子激光演示实验的概念设计

摘要

Up to now, short-wavelength free-electron lasers (FEL) have been systems on the scale of hundreds of meters up to multiple kilometers. Due to the advancements in laser-plasma acceleration in the recent years, these accelerators have become a promising candidate for driving a fifth-generation synchrotron light source – a lab-scale free-electron laser.ududSo far, demonstration experiments have been hindered by the broad energy spread typical for this type of accelerator. This thesis addresses the most important challenges of the conceptual design for a first lab-scale FEL demonstration experiment using analytical considerations as well as simulations.ududThe broad energy spread reduces the FEL performance directly by weakening the microbunching and indirectly via chromatic emittance growth, caused by the focusing system. Both issues can be mitigated by decompressing the electron bunch in a magnetic chicane, resulting in a sorting by energies. This reduces the local energy spread as well as the local chromatic emittance growth and also lowers performance degradations caused by the short bunch length. Moreover, the energy dependent focus position leads to a focus motion within the bunch, which can be synchronized with the radiation pulse, maximizing the current density in the interaction region. This concept is termed chromatic focus matching. A comparison shows the advantages of the longitudinal decompression concept compared to the alternative approach of transverse dispersion.ududWhen using typical laser-plasma based electron bunches, coherent synchrotron radiation and space-charge contribute in equal measure to the emittance growth during decompression. It is shown that a chicane for this purpose must not be as weak and long as affordable to reduce coherent synchrotron radiation, but that an intermediate length is required.ududFurthermore, the interplay of the individual concepts and components is assessed in a start-to-end simulation, confirming the feasibility of the envisioned experiment. Moreover, the setup tolerances for a first demonstration experiment are determined, confirming the general practicability. The revealed challenges, besides the energy spread, especially concern the source stability and the precision of the beam optics setup.
机译:到目前为止,短波自由电子激光器(FEL)的规模已达数百米到几公里。由于近年来激光等离子加速技术的进步,这些加速器已成为驱动第五代同步加速器光源(实验室规模的自由电子激光器)的有希望的候选者。 ud ud到目前为止,演示实验已经开展。受此类加速器典型的广泛能量传播的阻碍。本文利用分析和模拟方法解决了首次实验室规模的FEL演示实验的概念设计所面临的最重要挑战。 ,由聚焦系统引起。这两个问题都可以通过在磁锥中使电子束减压来缓解,从而按能量进行分类。这减少了局部能量散布以及局部彩色发射率的增长,并且还减少了由短束长度引起的性能下降。此外,取决于能量的焦点位置导致束内的焦点运动,该焦点运动可以与辐射脉冲同步,从而使交互区域中的电流密度最大化。这个概念称为色聚焦匹配。比较结果表明,与横向扩散的替代方法相比,纵向减压概念具有优势。 ud ud使用典型的基于激光等离子体的电子束时,相干同步辐射和空间电荷在减压过程中对发射率的增长具有同等的作用。结果表明,为了减少相干同步加速器辐射,为此目的的斜角锥必须不那么弱,不能承受得起,而是需要中间长度。 ud ud此外,首先要评估各个概念和组件之间的相互作用。到结束的仿真,证实了预想实验的可行性。此外,确定了首次演示实验的设置公差,从而确认了一般实用性。除了能量传播外,所揭示的挑战还特别涉及光源的稳定性和光束光学装置的精度。

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    Seggebrock Thorben;

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  • 年度 2015
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