English

Coherent all X-ray four wave mixing at core shell resonances

Optics 2024-08-23 v1 Atomic Physics

Abstract

Nonlinear wave mixing in the X-ray range can provide valuable insights into the structural and electron dynamics of atomic and molecular systems on ultrafast time scales, with state- and site-selectivity and atomic resolution. This promising experimental toolbox was so far limited by requiring at least one near-visible laser, thus preventing core-shell two-dimensional X-ray spectroscopy. In this work, we demonstrate the generation of background-free all-X-ray four-wave mixing (XFWM) signals from a dilute gaseous sample (Ne). The measured and simulated two-dimensional spectral maps (ωin,ωout\omega_{\text{in}},\omega_{\text{out}}) show multiple contributions involving the coherent response from core electrons. Notably, two-color resonant XFWM signals, essential for generalized multi-color schemes that allow to locally probe the electronic excitation of matter, are observed in neutral Ne. Moreover, stimulated Ne+^+ emission in each of the propagating X-ray pulses leads to an increase of the temporal coherence in a narrow-bandwidth, which results in the coherent mixing of three X-ray lasers. Preliminary X-ray excitation experiments making use of multi-color time-delayed X-ray pulses demonstrate temporal resolution capability and show a time dependency consistent with a signal dominated by resonant XFWM processes. This first all-X-ray four-wave-mixing approach represents a major breakthrough towards multidimensional X-ray correlation spectroscopy and the general application of nonlinear all-X-ray wave-mixing.

Keywords

Cite

@article{arxiv.2408.11881,
  title  = {Coherent all X-ray four wave mixing at core shell resonances},
  author = {Ana Sofia Morillo-Candas and Sven Martin Augustin and Eduard Prat and Antoine Sarracini and Jonas Knurr and Serhane Zerdane and Zhibin Sun and Ningchen Yang and Marc Rebholz and Hankai Zhang and Yunpei Deng and Xinhua Xie and Andrea Cannizzo and Andre Al-Haddad and Kirsten Andrea Schnorr and Christian Ott and Thomas Feurer and Christoph Bostedt and Thomas Pfeifer and Gregor Knopp},
  journal= {arXiv preprint arXiv:2408.11881},
  year   = {2024}
}