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在FLASH2的FEL-光学激光探头实验中,时间分辨率低于50 fs
Optics express
|March 5, 2024
概括
在探头实验中实现高时间分辨率需要精确控制激光到达时间. 这项研究提出了一种新的方法,使用激光脉冲到达时间监测器来积极纠正光学激光相对于X射线自由电子激光器 (FEL) 的时间,显著改善时间分辨率.
科学领域:
- 超快的科学超快的科学
- 激光物理学的激光物理学
- 粒子加速器中的粒子加速器.
背景情况:
- 高时间分辨率对于超快的探头实验至关重要.
- 在同步X射线自由电子激光器 (FEL) 与光学激光器时,控制到达时间的动和漂移至关重要.
- 在FEL中,大型设施和独特的脉冲生成过程加剧了时间挑战.
研究的目的:
- 展示和评估激光脉冲到达时间监控器,以积极纠正光学激光定时.
- 通过将光学激光与FEL同步来提高探头实验的时间分辨率.
- 通过基准测量来证明开发系统的有效性.
主要方法:
- 应用激光脉冲到达时间监控器来积极纠正相对于FEL光学时钟的光学激光到达时间.
- 在分析后实施单脉冲动纠正.
- 在FLASH光束线FL26.26.上使用 xenon原子的光电离的基准测量.
主要成果:
- 在探头实验中,时间分辨率显著提高.
- 展示50 fs以下的全宽度在半最大 (FWHM) 的整体时间分辨率.
- 光学激光器与FEL的主要光学时钟成功同步.
结论:
- 开发的激光脉冲到达时间监控器有效地纠正相对于FELs的光学激光时间.
- 组合的活跃校正和分析后的震动校正显著提高了时间分辨率.
- 该系统可实现前所未有的时间分辨率,用于使用FEL的超快探头实验.
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