English

Nonlinear coherence effects in transient-absorption ion spectroscopy with stochastic extreme-ultraviolet free-electron laser pulses

Atomic Physics 2019-09-11 v1 Quantum Physics

Abstract

We demonstrate time-resolved nonlinear extreme-ultraviolet absorption spectroscopy on multiply charged ions, here applied to the doubly charged neon ion, driven by a phase-locked sequence of two intense free-electron laser pulses. Absorption signatures of resonance lines due to 2pp--3dd bound--bound transitions between the spin-orbit multiplets 3^3P0,1,2_{0,1,2} and 3^3D1,2,3_{1,2,3} of the transiently produced doubly charged Ne2+^{2+} ion are revealed, with time-dependent spectral changes over a time-delay range of (2.4±0.3)fs(2.4\pm0.3)\,\text{fs}. Furthermore, we observe 10-meV-scale spectral shifts of these resonances owing to the AC Stark effect. We use a time-dependent quantum model to explain the observations by an enhanced coupling of the ionic quantum states with the partially coherent free-electron-laser radiation when the phase-locked pump and probe pulses precisely overlap in time.

Keywords

Cite

@article{arxiv.1907.07182,
  title  = {Nonlinear coherence effects in transient-absorption ion spectroscopy with stochastic extreme-ultraviolet free-electron laser pulses},
  author = {Thomas Ding and Marc Rebholz and Lennart Aufleger and Maximilian Hartmann and Kristina Meyer and Veit Stooss and Alexander Magunia and David Wachs and Paul Birk and Yonghao Mi and Gergana D. Borisova and Carina da Costa Castanheira and Patrick Rupprecht and Zhi-Heng Loh and Andrew R. Attar and Thomas Gaumnitz and Sebastian Roling and Marco Butz and Helmut Zacharias and Stefan Düsterer and Rolf Treusch and Stefano M. Cavaletto and Christian Ott and Thomas Pfeifer},
  journal= {arXiv preprint arXiv:1907.07182},
  year   = {2019}
}