English

Attosecond timing of electron emission from a molecular shape resonance

Chemical Physics 2020-08-14 v2

Abstract

Shape resonances in physics and chemistry arise from the spatial confinement of a particle by a potential barrier. In molecular photoionization, these barriers prevent the electron from escaping instantaneously, so that nuclei may move and modify the potential, thereby affecting the ionization process. By using an attosecond two-color interferometric approach in combination with high spectral resolution, we have captured the changes induced by the nuclear motion on the centrifugal barrier that sustains the well-known shape resonance in valence-ionized N2_2. We show that despite the nuclear motion altering the bond length by only 2%2\%, which leads to tiny changes in the potential barrier, the corresponding change in the ionization time can be as large as 200200 attoseconds. This result poses limits to the concept of instantaneous electronic transitions in molecules, which is at the basis of the Franck-Condon principle of molecular spectroscopy.

Keywords

Cite

@article{arxiv.1911.08181,
  title  = {Attosecond timing of electron emission from a molecular shape resonance},
  author = {S. Nandi and E. Plésiat and S. Zhong and A. Palacios and D. Busto and M. Isinger and L. Neoričić and C. L. Arnold and R. J. Squibb and R. Feifel and P. Decleva and A. L'Huillier and F. Martín and M. Gisselbrecht},
  journal= {arXiv preprint arXiv:1911.08181},
  year   = {2020}
}

Comments

24 pages, 5 figures