Energy Stabilization of High-Charge Bunches from Laser Plasma Accelerators

Xueyan Shi, Haisheng Xu, Dazhang Li, Jia Wang, Ming Zeng
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Abstract

Laser plasma accelerators (LPAs) have become one of the frontiers of the accelerator community, mainly because they promise orders of magnitude improvement in the accelerating gradient. However, the energy stability and spread of the high-charge bunched beams (e.g., several hundred pC per bunch) from LPAs still strongly limit their applications. In this work, we propose a novel method utilizing magnetic chicanes combined with both active and passive plasma dechirpers to simultaneously reduce the central energy deviation and the energy spread of high-charge bunched beams from LPAs. Start-to-end simulations demonstrate that the central energy deviation and the energy spread of approximately 500 pC bunches can be simultaneously reduced from approximately 2% and 1.2% to 0.1% and 0.5%, respectively, while maintaining almost perfect transmission efficiency (above 97%).
激光等离子加速器高电荷束的能量稳定
激光等离子体加速器(LPA)已成为加速器领域的前沿技术之一,这主要是因为它们有望在加速梯度上实现数量级的改进。然而,激光等离子加速器产生的高电荷束流(例如每束几百 pC)的能量稳定性和扩散仍然严重限制了其应用。在这项工作中,我们提出了一种新方法,利用磁卡槽与主动和被动等离子体去驰豫器相结合,同时减少来自 LPA 的高电荷束的中心能量偏差和能量扩散。自始至终的模拟证明,在保持几乎完美的传输效率(97% 以上)的同时,约 500 pC 束的中心能量偏差和能量扩散可分别从约 2% 和 1.2% 同时降低到 0.1% 和 0.5%。
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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