Published December 1997 | Version v1
Journal article

Approximations based on the adiabatic treatment of rotation for resonances

  • 1. Department of Chemistry and Cherry L. Emerson Center for Scientific Computation, Emory University, Atlanta, Georgia 30322 (United States)

Description

In the adiabatic treatment of overall rotational motion, the rotational energy is obtained by diagonalization of the inertia tensor at each nuclear configuration, and subsequent insertion of the rotation constants into the standard formalism for the energy for a symmetric or asymmetric top. We have tested this approximation previously for bound states and resonances in HCO, and found it to be quite accurate. This adiabatic approximation is justified here by deriving an approximation very similar to it (but less accurate) for a triatomic molecule. We then consider further approximations to the adiabatic rotation approximation. In one we assume that rotation constants for each resonance are independent of the angular momentum state J. This approximation requires a minimum of two calculations of resonance positions and widths for nonzero J in addition to the one for J=0. The second approximation we consider is standard first-order perturbarion theory. The adiabatic rotational energy is the perturbation relative to the J=0 Hamiltonian, and the complex L2 eigenfunctions of this Hamiltonian are the zero-order states. These two approximations are tested for HCO bound states and resonances, where those obtained from the full adiabatic rotation approximation are assumed to be the benchmark calculations. copyright 1997 American Institute of Physics

Additional details

Publishing Information

Journal Title
Journal of Chemical Physics
Journal Volume
107
Journal Issue
23
Journal Page Range
p. 9960-9965.
ISSN
0021-9606
CODEN
JCPSA6

INIS

Country of Publication
United States
Country of Input or Organization
United States
INIS RN
29012428
Subject category
S74: ATOMIC AND MOLECULAR PHYSICS;
Descriptors DEI
ADIABATIC APPROXIMATION; CHEMICAL REACTIONS; FORMYL RADICALS; LINE WIDTHS; PERTURBATION THEORY; ROTATIONAL STATES; TENSORS
Descriptors DEC
ACYL RADICALS; ENERGY LEVELS; EXCITED STATES; RADICALS