A Comparison of Quantum, Classical, and Semiclassical Descriptions of a Model, Collinear, Inelastic Collision of Two Diatomic Molecules.

Abstract

The collinear dynamics of a model diatom-diatom system is investigated. The collision partners are harmonic oscillators for which the masses and force constants are chosen to correspond to those of the nitrogen and oxygen molecules. The interaction between the molecules arises from a Lennard-Jones 6-12 potential acting between the inside atoms in the collinear system. Quantum mechanical close coupled calculations are performed for several collision energies ranging from 1.0 ev to 2.25 ev. The state-to-state transition probabilities which are extracted from these calculations are then used as a benchmark for comparison. Semiclassical calculations are performed within the framework of a classical path approximation. A simple scheme to modify the classical path to reflect energy exchange between the collision coordinate and the internal degrees of freedom is found to improve the results. On the whole, the agreement between the semiclassical and the quantum mechanical results is surprisingly good. The classical trajectory calculations correctly display many of the qualitative features of the collisions but the numerical agreement is not as close. Unexpectedly, the classical results do not appear to be improving as the collision energy is increased. Keywords: Molecular scattering; Vibrational energy transfer; Collision dynamics; and Collinear collision.

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Document Details

Document Type
Technical Report
Publication Date
Dec 13, 1985
Accession Number
ADA162357

Entities

People

  • David J. Miller
  • Elaine Oran
  • Jay Paul Boris
  • M. D. Page
  • R. E. Wyatt

Organizations

  • United States Naval Research Laboratory

Tags

Communities of Interest

  • Energy and Power Technologies

DTIC Thesaurus Topics

  • Agreements
  • Chemistry
  • Computational Chemistry
  • Diatomic Molecules
  • Dynamics
  • Elastic Scattering
  • Elements
  • Energy
  • Energy Transfer
  • Equations
  • Equations Of Motion
  • Ground State
  • Inelastic Scattering
  • Molecular Dynamics
  • Molecules
  • Scattering
  • Trajectories

Fields of Study

  • Physics

Readers

  • Computational Modeling and Simulation
  • Molecular Photonics/Laser Physics

Technology Areas

  • Quantum Computing