English

Laser-induced electron diffraction of the ultrafast umbrella motion in ammonia

Chemical Physics 2021-01-01 v1

Abstract

Visualizing molecular transformations in real-time requires a structural retrieval method with {\AA}ngstr\"om spatial and femtosecond temporal atomic resolution. Imaging of hydrogen-containing molecules additionally requires an imaging method that is sensitive to the atomic positions of hydrogen nuclei, with most methods possessing relatively low sensitivity to hydrogen scattering. Laser-induced electron diffraction (LIED) is a table top technique that can image ultrafast structural changes of gas-phase polyatomic molecules with sub-{\AA}ngstr\"om and femtosecond spatiotemporal resolution together with relatively high sensitivity to hydrogen scattering. Here, we image the umbrella motion of an isolated ammonia molecule (NH3_3) following its strong field ionization. Upon ionization of a neutral ammonia molecule, the ammonia cation (NH3+_3^+) undergoes an ultrafast geometrical transformation from a pyramidal (ΦHNH=107\Phi_{HNH} = 107 ^\circ) to planar (ΦHNH=120\Phi_{HNH}=120^\circ) structure in approximately 8 femtoseconds. Using LIED, we retrieve a near-planar (ΦHNH=117±5\Phi_{HNH}=117 \pm 5^\circ) field-dressed NH3+_3^+ molecular structure 7.89.87.8-9.8 femtoseconds after ionization. Our measured field-dressed NH3+_3^+ structure is in excellent agreement with our calculated equilibrium field dressed structure using quantum chemical ab initio calculations.

Keywords

Cite

@article{arxiv.2012.15374,
  title  = {Laser-induced electron diffraction of the ultrafast umbrella motion in ammonia},
  author = {Blanca Belsa and Kasra Amini and Xinyao Liu and Aurelien Sanchez and Tobias Steinle and Johannes Steinmetzer and Anh-Thu Le and Robert Moshammer and Thomas Pfeifer and Joachim Ullrich and Robert Moszynski and Chii-Dong Lin and Stefanie Gräfe and Jens Biegert},
  journal= {arXiv preprint arXiv:2012.15374},
  year   = {2021}
}