Passer à la navigation principale Passer à la recherche Passer au contenu principal

Collisional broadening and spectral shapes of absorption lines of free and nanopore-confined O2 gas

  • J. M. Hartmann
  • , V. Sironneau
  • , C. Boulet
  • , T. Svensson
  • , J. T. Hodges
  • , C. T. Xu
  • Lab. Interuniversitaire Systemes
  • National Institute of Standards and Technology
  • Universite Paris-Sud
  • LENS, University of Florence
  • Lund University

Résultats de recherche: Contribution à un journalArticleRevue par des pairs

Résumé

This paper presents fully ab initio calculations of the broadenings and spectral shapes of O2 infrared absorption lines in a free gas and when confined in nanoporous media. These calculations are performed, without use of any adjusted parameter, using a recently proposed approach that is based on requantized classical molecular-dynamics simulations. This involves studying the time evolutions of the translational and rotational motions of large numbers of molecules taking molecule-molecule and molecule-surface collisions into account through realistic interaction potentials. These simulations enable predictions of dipole autocorrelation functions whose Fourier-Laplace transforms yield the associated spectra. Comparisons are then made with broadening coefficients and line shapes provided by new and previous experiments. The good agreement between calculated and measured results confirms the veracity of the proposed model for a free gas and shows that the effects of confinement, which induce significant modifications to the line shapes, are correctly predicted. The need for improved characterization of the shape and size of pores in random nanoporous media is highlighted.

langue originaleAnglais
Numéro d'article032510
journalPhysical Review A - Atomic, Molecular, and Optical Physics
Volume87
Numéro de publication3
Les DOIs
étatPublié - 19 mars 2013
Modification externeOui

Empreinte digitale

Examiner les sujets de recherche de « Collisional broadening and spectral shapes of absorption lines of free and nanopore-confined O2 gas ». Ensemble, ils forment une empreinte digitale unique.

Contient cette citation