English

Time-resolved four-wave-mixing spectroscopy for inner-valence transitions

Atomic Physics 2016-04-20 v1

Abstract

Non-collinear four-wave mixing (FWM) techniques at near-infrared (NIR), visible, and ultraviolet frequencies have been widely used to map vibrational and electronic couplings, typically in complex molecules. However, correlations between spatially localized inner-valence transitions among different sites of a molecule in the extreme ultraviolet (XUV) spectral range have not been observed yet. As an experimental step towards this goal we perform time-resolved FWM spectroscopy with femtosecond NIR and attosecond XUV pulses. The first two pulses (XUV-NIR) coincide in time and act as coherent excitation fields, while the third pulse (NIR) acts as a probe. As a first application we show how coupling dynamics between odd- and even-parity inner-valence excited states of neon can be revealed using a two-dimensional spectral representation. Experimentally obtained results are found to be in good agreement with ab initio time-dependent R-matrix calculations providing the full description of multi-electron interactions, as well as few-level model simulations. Future applications of this method also include site-specific probing of electronic processes in molecules.

Keywords

Cite

@article{arxiv.1510.08698,
  title  = {Time-resolved four-wave-mixing spectroscopy for inner-valence transitions},
  author = {Thomas Ding and Christian Ott and Andreas Kaldun and Alexander Blättermann and Kristina Meyer and Veit Stooß and Marc Rebholz and Paul Birk and Maximilian Hartmann and Andrew Brown and Hugo Van Der Hart and Thomas Pfeifer},
  journal= {arXiv preprint arXiv:1510.08698},
  year   = {2016}
}

Comments

5 pages, 3 figures

R2 v1 2026-06-22T11:32:07.722Z