Resonance fluorescence in ultrafast and intense x-ray free-electron-laser pulses
arXiv:1205.4918 · doi:10.1103/PhysRevA.86.033402
Abstract
The spectrum of resonance fluorescence is calculated for a two-level system excited by an intense, ultrashort x-ray pulse made available for instance by free-electron lasers such as the Linac Coherent Light Source. We allow for inner-shell hole decay widths and destruction of the system by further photoionization. This two-level description is employed to model neon cations strongly driven by x rays tuned to the 1s 2p-1 --> 1s-1 2p transition at 848 eV; the x rays induce Rabi oscillations which are so fast that they compete with Ne 1s-hole decay. We predict resonance fluorescence spectra for two different scenarios: first, chaotic pulses based on the self-amplified spontaneous emission principle, like those presently generated at x-ray free-electron-laser facilities and, second, Gaussian pulses which will become available in the foreseeable future with self-seeding techniques. As an example of the exciting opportunities derived from the use of seeding methods, we predict, in spite of above obstacles, the possibility to distinguish at x-ray frequencies a clear signature of Rabi flopping in the spectrum of resonance fluorescence.
17 pages, 13 figures
Cited by in corpus (5)
- Astrophysical line diagnosis requires non-linear dynamical atomic modeling
- High temporal and spectral resolution of stimulated x-ray Raman signals with stochastic free-electron-laser pulses
- X-ray assisted nuclear excitation by electron capture in optical laser-generated plasmas
- Optically-dressed resonant Auger processes induced by high-intensity x rays
- Non-Equilibrium Modeling of the Fe XVII 3C/3D ratio for an Intense X-ray Free Electron Laser