Time dependence of Bragg forward scattering and self-seeding of hard x-ray free-electron lasers
arXiv:1202.1472 · doi:10.1103/PhysRevSTAB.15.050706
Abstract
Free-electron lasers (FELs) can now generate temporally short, high power x-ray pulses of unprecedented brightness, even though their longitudinal coherence is relatively poor. The longitudinal coherence can be potentially improved by employing narrow bandwidth x-ray crystal optics, in which case one must also understand how the crystal affects the field profile in time and space. We frame the dynamical theory of x-ray diffraction as a set of coupled waves in order to derive analytic expressions for the spatiotemporal response of Bragg scattering from temporally short incident pulses. We compute the profiles of both the reflected and forward scattered x-ray pulses, showing that the time delay of the wave is linked to its transverse spatial shift through the simple relationship , where is the grazing angle of incidence to the diffracting planes. Finally, we apply our findings to obtain an analytic description of Bragg forward scattering relevant to monochromatically seed hard x-ray FELs.
11 pages, 6 figures
Cited by in corpus (8)
- Spatiotemporal Response of Crystals in X-ray Bragg Diffraction
- Vacuum birefringence at x-ray free-electron lasers
- Vacuum birefringence and diffraction at XFEL: from analytical estimates to optimal parameters
- Output coupling from x-ray free-electron laser cavities with intracavity beam splitters
- Maximizing Spectral Flux from Self-Seeding Hard X-ray FELs
- Optimization of a dedicated bio-imaging beamline at the European X-ray FEL
- Time-dependent Bragg diffraction and short-pulse reflection by one-dimensional photonic crystals
- Time-dependent Bragg diffraction bymultilayer gratings