Zapolnova Ekaterina, Golz Torsten, Pan Rui, Klose Karsten, Schreiber Siegfried, Stojanovic Nikola
Deutsches Elektronen-Synchrotron - DESY, Notkestrasse 85, D-22607 Hamburg, Germany.
J Synchrotron Radiat. 2018 Jan 1;25(Pt 1):39-43. doi: 10.1107/S1600577517015442.
FLASH, the X-ray free-electron laser in Hamburg, Germany, employs a narrowband high-field accelerator THz source for unique THz pump X-ray probe experiments. However, the large difference in optical paths of the THz and X-ray beamlines prevents utilization of the machine's full potential (e.g. extreme pulse energies in the soft X-ray range). To solve this issue, lasing of double electron bunches, separated by 28 periods of the driving radiofrequency (at 1.3 GHz), timed for the temporal overlap of THz and X-ray pulses at the experimental station has been employed. In order to optimize conditions for a typical THz pump X-ray probe experiment, X-ray lasing of the first bunch to one-sixth of that of the second has been suppressed. Finally, synchronization of THz radiation pulses was measured to be ∼20 fs (r.m.s.), and a solution for monitoring the arrival time for achieving higher temporal resolution is presented.
德国汉堡的X射线自由电子激光装置FLASH采用了一种窄带高场加速器太赫兹源,用于进行独特的太赫兹泵浦- X射线探测实验。然而,太赫兹和X射线束线的光程差异很大,这阻碍了该装置充分发挥其潜力(例如软X射线范围内的极高脉冲能量)。为了解决这个问题,采用了由28个驱动射频周期(1.3GHz)分隔的双电子束团的激光发射,以实现太赫兹和X射线脉冲在实验站的时间重叠。为了优化典型太赫兹泵浦- X射线探测实验的条件,已将第一束团的X射线激光发射抑制到第二束团的六分之一。最后,测得太赫兹辐射脉冲的同步精度约为20飞秒(均方根误差),并提出了一种用于监测到达时间以实现更高时间分辨率的解决方案。