Potemkin Fedor V, Mareev Evgeny I, Garmatina Alena A, Nazarov Maxim M, Fomin Evgeniy A, Stirin Alexander I, Korchuganov Vladimir N, Kvardakov Vladimir V, Gordienko Viacheslav M, Panchenko Vladislav Ya, Kovalchuk Mikhail M
Faculty of Physics and International Laser Center, M. V. Lomonosov Moscow State University, Moscow 119991, Russia.
Institute of Photonic Technologies, FSKC "Crystallography and Photonics," Russian Academy of Sciences, Troitsk 119333, Russia.
Rev Sci Instrum. 2021 May 1;92(5):053101. doi: 10.1063/5.0028228.
We developed a hybrid optical pump-x-ray probe facility based on the "Kurchatov's synchrotron radiation source" and terawatt (TW) femtosecond laser. The bright x-ray photon source is based on either synchrotron radiation [up to 6 × 10 photons/(s mm mrad 0.1% bandwidth)] or laser-plasma generators (up to 10 photons/sr/pulse). The terawatt (TW) femtosecond laser pulse initiated phase transitions and a non-stationary "extreme" state of matter, while the delayed x-ray pulse acts as a probe. The synchronization between synchrotron radiation and laser pulses is achieved at 60.3 MHz using an intelligent field-programmable gate array-based phased locked loop. The timing jitter of the system is less than 30 ps. In laser-plasma sources, the x-ray and laser pulses are automatically synchronized because they are produced by using the same laser source (TW laser system). We have reached an x-ray yield of about 10 photons/sr/pulse with 6-mJ sub-ps laser pulses and using helium as a local gas medium. Under vacuum conditions, the laser energy increase up to 40 mJ leads to the enhancement of the x-ray yield of up to 10 photons/sr/pulse. The developed hybrid facility paves the way for a new class of time-resolved x-ray optical pump-probe experiments in the time interval from femtoseconds to microseconds and the energy spectrum from 3 to 30 keV.
我们基于“库尔恰托夫同步辐射源”和太瓦(TW)飞秒激光开发了一种混合光泵浦 - X射线探测装置。明亮的X射线光子源基于同步辐射[高达6×10个光子/(秒·毫米·毫弧度·0.1%带宽)]或激光等离子体发生器(高达10个光子/立体角/脉冲)。太瓦(TW)飞秒激光脉冲引发物质的相变和非稳态“极端”状态,而延迟的X射线脉冲用作探测器。利用基于智能现场可编程门阵列的锁相环在60.3 MHz实现同步辐射与激光脉冲之间的同步。系统的定时抖动小于30皮秒。在激光等离子体源中,X射线和激光脉冲自动同步,因为它们由同一激光源(TW激光系统)产生。我们使用6毫焦亚皮秒激光脉冲并以氦气作为局部气体介质,实现了约10个光子/立体角/脉冲的X射线产额。在真空条件下,激光能量增加到40毫焦会使X射线产额提高到10个光子/立体角/脉冲。所开发的混合装置为在从飞秒到微秒的时间间隔以及3至30千电子伏特的能谱范围内进行新型时间分辨X射线光泵浦 - 探测实验铺平了道路。