THE THERMAL PHASE OF FAST PROTON EQUILIBRATION IN METALS - HYDROGEN-ATOM DIFFUSION

Citation
Jk. Baird et Em. Schwartz, THE THERMAL PHASE OF FAST PROTON EQUILIBRATION IN METALS - HYDROGEN-ATOM DIFFUSION, Nuclear instruments & methods in physics research. Section B, Beam interactions with materials and atoms, 96(3-4), 1995, pp. 657-662
Citations number
36
Categorie Soggetti
Physics, Nuclear","Nuclear Sciences & Tecnology","Instument & Instrumentation
ISSN journal
0168583X
Volume
96
Issue
3-4
Year of publication
1995
Pages
657 - 662
Database
ISI
SICI code
0168-583X(1995)96:3-4<657:TTPOFP>2.0.ZU;2-S
Abstract
A fast proton passing through a metal slows down and captures an elect ron to form a hydrogen atom. Subsequent equilibration of the spatial l ocation of the hydrogen atom proceeds by diffusion amongst interstitia l sites in the crystal lattice of the metal. The diffusion coefficient is a strong function of both temperature and the isotopic mass of the H-atom. Using a quantum barrier crossing model, we have computed the Arrhenius activation energy, E(j), for diffusion where j = 1, 2, 3 run s over the mass numbers of the three isotopes, H-1, H-2, H-3, respecti vely. At sufficiently low temperatures, we find a ''normal'' isotope e ffect, where E(1) < E(2) < E(3) (as in the case of H-atoms diffusing t hrough Fe, V, Nb, and Ta), while at sufficiently high temperatures, we find an ''inverse'' isotope effect, where E(3) < E(2) < E(1) (as in t he case of H-atoms diffusing through Cu, Ni, and Pd). Between these tw o extremes, we find temperature ''cross-over'' regions where E(1) < E( 3) < E(2) and E(3) < E(1) < E(2).