A1 Vertaisarvioitu alkuperäisartikkeli tieteellisessä lehdessä
Effects of molecular potential and geometry on atomic core-level photoemission over an extended energy range - the case study of CO molecule
Tekijät: E. Kukk, D. Ayuso, T. D. Thomas, P. Decleva, M. Patanen, L. Argenti, E. Plésiat, A. Palacios, K. Kooser, O. Travnikova, S. Mondal, M. Kimura, K. Sakai, C. Miron, F. Martín, K. Ueda
Kustantaja: IOP PUBLISHING LTD
Kustannuspaikka: BRISTOL; DIRAC HOUSE, TEMPLE BACK, BRISTOL BS1 6BE, ENGLAND
Julkaisuvuosi: 2013
Journal: Physical Review A
Tietokannassa oleva lehden nimi: Physical Review A
Vuosikerta: 88
Numero: 3
Sivujen määrä: 1
ISSN: 1742-6588
DOI: https://doi.org/10.1103/PhysRevA.88.033412
Verkko-osoite: http://link.aps.org/doi/10.1103/PhysRevA.88.033412
We report an experimental and theoretical study of single-molecule inner-shell photoemission measured over an extended range of photon energies. The vibrational intensity ratios I({ν=1)/I(ν=0)} from the C 1s photoelectron spectra of carbon monoxide, although mostly determined by the bond length change upon ionization, are shown to be affected also by photoelectron recoil and by scattering from the neighboring oxygen atom. Static-exchange density functional theory ({DFT)} is used to encompass all these effects in a unified theoretical treatment. The ab initio calculations show that the vibrational ratio as a function of the photoelectron momentum is sensitive to both the ground-state internuclear distance and its contraction upon photoionization. We present a proof-of-principle application of {DFT} calculations as a quantitative structural analysis tool for extracting the dynamic and static molecular geometry parameters simultaneously.