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Hydrogen Diffusion and Radiationless Electron Transfer in Metal Hydrides
Author(s) -
Lupu D.
Publication year - 1989
Publication title -
physica status solidi (b)
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.51
H-Index - 109
eISSN - 1521-3951
pISSN - 0370-1972
DOI - 10.1002/pssb.2221550104
Subject(s) - diffusion , hydrogen , electron transfer , atmospheric temperature range , quantum tunnelling , activation energy , atomic physics , chemistry , electron , range (aeronautics) , metal , materials science , condensed matter physics , thermodynamics , physics , organic chemistry , quantum mechanics , composite material
The activation energies of the radiationless electron transfer are calculated from the optical spectra of some Sc, Y, La, Lu, Nb, Pd, and Mg 2 Ni hydrides. These are practically the same with the values of the activation energies for hydrogen diffusion, pointing out to the importance of electron transfer from localized states to the conduction band in the mechanism of hydrogen diffusion. The exponential temperature dependence of the radiationless electron transfer probability together with vibrational tunneling at low temperatures can account for the temperature dependence of H diffusion in the entire temperature range. A comparison between the electronic structures of NiH and PdH qualitatively explains the higher activation energy of H diffusion in Ni. Isotopic effects in Pd hydrides and a treatment based on Frenkel defects also support the proposed model.
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