Unimolecular Rovibrational Bound and Resonance States for Large Angular Momentum: J=20 Calculations for HO2


Autoria(s): Zhang, H.; Smith, S. C.
Data(s)

11/07/2005

Resumo

We explore the calculation of unimolecular bound states and resonances for deep-well species at large angular momentum using a Chebychev filter diagonalization scheme incorporating doubling of the autocorrelation function as presented recently by Neumaier and Mandelshtam [Phys. Rev. Lett. 86, 5031 (2001)]. The method has been employed to compute the challenging J=20 bound and resonance states for the HO2 system. The methodology has firstly been tested for J=2 in comparison with previous calculations, and then extended to J=20 using a parallel computing strategy. The quantum J-specific unimolecular dissociation rates for HO2-> H+O-2 in the energy range from 2.114 to 2.596 eV have been reported for the first time, and comparisons with the results of Troe and co-workers [J. Chem. Phys. 113, 11019 (2000) Phys. Chem. Chem. Phys. 2, 631 (2000)] from statistical adiabatic channel method/classical trajectory calculations have been made. For most of the energies, the reported statistical adiabatic channel method/classical trajectory rate constants agree well with the average of the fluctuating quantum-mechanical rates. Near the dissociation threshold, quantum rates fluctuate more severely, but their average is still in agreement with the statistical adiabatic channel method/classical trajectory results.

Identificador

http://espace.library.uq.edu.au/view/UQ:75809

Idioma(s)

eng

Publicador

American Institute of Physics

Palavras-Chave #Physics, Atomic, Molecular & Chemical #Discrete Variable Representation #Quantum-mechanical Calculations #Storage Filter Diagonalization #Lippmann-schwinger Equations #Independent Wavepacket-schrodinger #Absolute Spectral Densities #Potential-energy Surfaces #Reactive Scattering #Polynomial Expansion #Lanczos Subspace #C1 #250603 Reaction Kinetics and Dynamics #780102 Physical sciences
Tipo

Journal Article