Published April 22, 2004 | Version v1
Journal article

Dissociative recombination of NH4+ and ND4+ ions: Storage ring experiments and ab initio molecular dynamics

  • 1. Department of Chemistry and Bioscience, Chalmers University of Technology, SE-412 96 Goeteborg (Sweden)
  • 2. Manne Siegbahn Laboratory, Frescativaegen 24, SE-104 05 Stockholm (Sweden)
  • 3. Institute of Physics, Swietokrzyska Academy, 25 406 Kielce (Poland)
  • 4. Department of Atomic and Molecular Physics, KTH, SE-106 91 Stockholm (Sweden)
  • 5. Department of Physics, AlbaNova University Centre, Stockholm University, Box 6730, SE-106 91 Stockholm (Sweden)
  • 6. Department of Chemistry, Atmospheric Science, Goeteborg University, SE-412 96 Goeteborg (Sweden)

Description

The dissociative recombination (DR) process of NH4+ and ND4+ molecular ions with free electrons has been studied at the heavy-ion storage ring CRYRING (Manne Siegbahn Laboratory, Stockholm University). The absolute cross sections for DR of NH4+ and ND4+ in the collision energy range 0.001-1 eV are reported, and thermal rate coefficients for the temperature interval from 10 to 2000 K are calculated from the experimental data. The absolute cross section for NH4+ agrees well with earlier work and is about a factor of 2 larger than the cross section for ND4+. The dissociative recombination of NH4+ is dominated by the product channels NH3+H (0.85±0.04) and NH2+2H (0.13±0.01), while the DR of ND4+ mainly results in ND3+D (0.94±0.03). Ab initio direct dynamics simulations, based on the assumption that the dissociation dynamics is governed by the neutral ground-state potential energy surface, suggest that the primary product formed in the DR process is NH3+H. The ejection of the H atom is direct and leaves the NH3 molecule highly vibrationally excited. A fraction of the excited ammonia molecules may subsequently undergo secondary fragmentation forming NH2+H. It is concluded that the model results are consistent with gross features of the experimental results, including the sensitivity of the branching ratio for the three-body channel NH2+2H to isotopic exchange

Additional details

Identifiers

Publishing Information

Journal Title
Journal of Chemical Physics
Journal Volume
120
Journal Issue
16
Journal Page Range
p. 7391-7399
ISSN
0021-9606
CODEN
JCPSA6

Optional Information

Notes
(c) 2004 American Institute of Physics.