Trapping and Energy Transfer in Atomic Collisions with a Crystal Surface
- 15 January 1963
- journal article
- research article
- Published by AIP Publishing in The Journal of Chemical Physics
- Vol. 38 (2) , 523-532
- https://doi.org/10.1063/1.1733690
Abstract
The condensation of atoms on a solid is examined by calculating the critical energy for trapping of a particle of arbitrary mass and force constant colliding with a linear lattice. In the harmonic approximation and using classical mechanics, the maximum kinetic energy for trapping is found to depend strongly upon the well depth, in qualitative agreement with experiment. For a gas atom colliding with its own lattice (that is, force constant ratio β=1 and mass ratio μ=1) capture occurs at translational energies up to 25 times the binding energy. For β=0.2, this critical energy has diminished to 1.3 times the dissociation energy Q of the homogeneous lattice. The dependence of the critical energy on force constant is not monotonic, however—there is a maximum at β∼0.75. At β=0.75 and μ=1, for example, the incident energy must exceed ∼31Q to prevent trapping. Most of the energy exchange occurs during the repulsive part of the collision. For this part of the collision interval, the presence of a trapping potential has little effect. However, the energy exchange occurring when the particle rebounds through the attractive part of the potential is sensitively dependent upon the force constant. For β0.2 the energy exchange is dictated primarily by the mass ratio. The coefficients calculated for hard‐sphere collisions provide an acceptable approximation when β>∼0.5.Keywords
This publication has 8 references indexed in Scilit:
- Interaction of Condensable Gases with Cold SurfacesThe Journal of Chemical Physics, 1960
- Collision of a Gas Atom with a Cold SurfaceThe Journal of Chemical Physics, 1960
- The structure of crystal surfacesDiscussions of the Faraday Society, 1959
- Focusing in Collision Problems in SolidsJournal of Applied Physics, 1957
- The interaction of atoms and molecules with solid surfaces - XI—The dispersal of energy from an activated linkProceedings of the Royal Society of London. Series A. Mathematical and Physical Sciences, 1937
- The interaction of atoms and molecules with solid surfaces IX—The emission and absorption of energy by a solidProceedings of the Royal Society of London. Series A. Mathematical and Physical Sciences, 1937
- The Evaporation of Atoms, Ions and Electrons from Caesium Films on TungstenPhysical Review B, 1933
- Zur Dynamik elastisch gekoppelter PunktsystemeAnnalen der Physik, 1914