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ULTRAFAST LASER SYNCHRONIZATION AT THE FERMI@ELETTRA FEL

机译:FERMI @ ELETTRA FEL的超快激光同步

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Modern VUV and X-ray Free Electron Laser (FEL) facilities contain a number of ultrafast lasers (like photoinjector, seed and pump-probe lasers) whose performance is crucial for the generated FEL light quality as well as for the accuracy of the time resolved measurements performed using the FEL pulses. One of the very important laser related aspects, especially at seeded FELs, is the ability to precisely lock the ultrafast laser systems to the master clock signal, keeping the timing jitter and drifts of the generated pulses with respect to the machine timing as low as possible. The aim of this work is to review the main sources of timing jitter and drifts and present the schemes and solutions developed at FERMI for their characterization and compensation. The paper will first introduce a general scheme showing the architecture of the laser locking system developed for FERMI. Both the radio-frequency (RF) locking and the advanced balanced optical cross correlator electronics and optical setup design are described, together with data on the laser oscillator locking performance obtained in different modalities. Cross correlation measurements indicating the contribution of the ultrafast regenerative amplifier and optical beam transport part to the overall temporal jitter of the amplified ultrashort pulses arriving at destination are presented. The paper also includes examples of the influence of improved laser timing jitter and drifts on the seeded FEL performance and discusses foreseen future developments.
机译:现代化的VUV和X射线自由电子激光器(FEL)设施包含许多超快激光器(如光注入器,种子和泵浦探针激光器),其性能对于产生的FEL光质量以及所解析的时间精度至关重要。使用FEL脉冲进行测量。与激光相关的非常重要的方面之一,特别是在种子FEL上,是将超快激光系统精确锁定到主时钟信号的能力,从而使时序抖动和所产生脉冲相对于机器时序的漂移保持尽可能低。这项工作的目的是回顾时序抖动和漂移的主要来源,并介绍由FERMI开发的用于其特性和补偿的方案和解决方案。本文将首先介绍一个通用方案,该方案显示为FERMI开发的激光锁定系统的体系结构。描述了射频(RF)锁定,先进的平衡光学互相关器电子设备和光学设置设计,以及以不同方式获得的有关激光振荡器锁定性能的数据。提出了互相关测量,这些测量指示超快再生放大器和光束传输部分对到达目的地的放大超短脉冲的整体时间抖动的贡献。本文还包括改善激光定时抖动和漂移对种子FEL性能的影响的示例,并讨论了可预见的未来发展。

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