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A split-beam probe-pump-probe scheme for femtosecond time resolved protein X-ray crystallography

机译:用于飞秒时间分辨蛋白质X射线晶体学的分流梁探针探针方案

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In order to exploit the femtosecond pulse duration of X-ray Free-Electron Lasers (XFEL) operating in the hard X-ray regime for ultrafast time-resolved protein crystallography experiments, critical parameters that determine the crystallographic signal-to-noise (I/σI) must be addressed. For single-crystal studies under low absorbed dose conditions, it has been shown that the intrinsic pulse intensity stability as well as mode structure and jitter of this structure, significantly affect the crystallographic signal-to-noise. Here, geometrical parameters are theoretically explored for a three-beam scheme: X-ray probe, optical pump, X-ray probe (or “probe-pump-probe”) which will allow experimental determination of the photo-induced structure factor amplitude differences, ΔF, in a ratiometric manner, thereby internally referencing the intensity noise of the XFEL source. In addition to a non-collinear split-beam geometry which separates un-pumped and pumped diffraction patterns on an area detector, applying an additional convergence angle to both beams by focusing leads to integration over mosaic blocks in the case of well-ordered stationary protein crystals. Ray-tracing X-ray diffraction simulations are performed for an example using photoactive yellow protein crystals in order to explore the geometrical design parameters which would be needed. The specifications for an X-ray split and delay instrument that implements both an offset angle and focused beams are discussed, for implementation of a probe-pump-probe scheme at the European XFEL. We discuss possible extension of single crystal studies to serial femtosecond crystallography, particularly in view of the expected X-ray damage and ablation due to the first probe pulse.
机译:为了利用在硬X射线制度中操作的X射线自由电子激光器(XFEL)的飞秒脉冲持续时间,以进行超快时间分辨蛋白质晶体学实验,确定晶体反对噪声的关键参数(I / Σi)必须解决。对于低吸收剂量条件下的单晶研究,已经表明,本结构的内在脉冲强度稳定性以及这种结构的模式结构和抖动显着影响了结晶信号对噪声。在这里,理论上,几何参数用于三梁方案:X射线探头,光学泵,X射线探针(或“探针泵探针”),这将允许实验测定光诱导的结构因子幅度差异,Δf以比例方式,从而在内部引用Xfel源的强度噪声。除了在区域检测器上分离未泵送和泵送的衍射图案的非共线分流梁几何形状,通过聚焦将额外的收敛角施加到两个光束上,导致在有序的固定蛋白质的情况下集成在马赛克块上水晶。为使用光活性黄蛋白质晶体进行射线跟踪X射线衍射模拟,以探索所需的几何设计参数。讨论了实现偏移角和聚焦光束的X射线分割和延迟仪器的规格,用于实现欧洲XFEL的探针探针方案。我们讨论了对串行飞秒晶体学的单晶研究的可能延伸,特别是考虑到由于第一探针脉冲引起的预期X射线损坏和消融。

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