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首页> 外文期刊>Plasma physics and controlled fusion >Low-energy-spread laser wakefield acceleration using ionization injection with a tightly focused laser in a mismatched plasma channel
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Low-energy-spread laser wakefield acceleration using ionization injection with a tightly focused laser in a mismatched plasma channel

机译:在不匹配的等离子通道中使用紧密聚焦的激光电离注入实现低能量扩展的激光尾场加速

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摘要

An improved ionization injection scheme for laser wakefield acceleration using a tightly focused laser pulse, with intensity near the ionization threshold to trigger the injection in a mismatched plasma channel, has been proposed and examined via 3D particle-in-cell (PIC) simulations. In this scheme, the key to achieving a very low energy spread is shortening the injection distance through the fast diffraction of the tightly focused laser. Furthermore, the oscillation of the laser envelope in the mismatched plasma channel can induce multiple low-energy-spread injections with an even distribution in both space and energy. The envelope oscillation can also significantly enhance the energy gain of the injected beams compared to the standard non-evolving wake scenario due to the rephasing between the electron beam and the laser wake. A theoretical model has been derived to precisely predict the injection distance, the ionization degree of injection atoms/ions, the electron yield as well as the ionized charge for given laser-plasma parameters, and such expressions can be directly utilized for optimizing the quality of the injected beam. Through 3D PIC simulations, we show that an injection distance as short as tens of microns can be achieved, which leads to ultrashort fs, few pC electron bunches with a narrow absolute energy spread around 2 MeV (rms). Simulations also show that the initial absolute energy spread remains nearly constant during the subsequent acceleration due to the very short bunch length, and this indicates that further acceleration of the electron bunches up to the GeV level may lead to an electron beam with an energy spread well below 0.5%. Such low-energy-spread electron beams may have potential applications for future coherent light sources driven by laser-plasma accelerators.
机译:已经提出了一种改进的电离注入方案,该方案使用紧密聚焦的激光脉冲来加速激光尾场,其强度接近电离阈值,以在不匹配的等离子通道中触发注入,并通过3D单元内粒子(PIC)模拟进行了检验。在此方案中,实现非常低的能量扩散的关键是通过紧密聚焦的激光的快速衍射来缩短注入距离。此外,不匹配的等离子体通道中的激光包络线的振荡会引发多次低能量扩散注入,从而在空间和能量上均分布。由于在电子束和激光尾流之间重新定相,与标准的非演化尾流情况相比,包络振荡还可以显着提高注入束的能量增益。推导了一个理论模型来精确预测给定激光等离子体参数的注入距离,注入原子/离子的电离度,电子产率以及电离电荷,这些表达式可直接用于优化质量。注入的光束通过3D PIC模拟,我们表明可以实现短至数十微米的注入距离,从而导致超短fs,少量pC电子束,且绝对能量分布在2 MeV(rms)左右。模拟还表明,由于束长度很短,初始绝对能量散布在随后的加速过程中几乎保持恒定,这表明电子束进一步加速到GeV能级可能会导致电子束的能量散布良好低于0.5%。这种低能量扩散的电子束可能对激光等离子加速器驱动的未来相干光源具有潜在的应用。

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