The formation of a highly mobile species during the decomposition reactions in Ti-doped and undoped sodium alanates is observed for the first time by anelastic spectroscopy. This species gives rise to a thermally activated relaxation peak around 70 K at 1 kHz, with an activation energy of 0.126 eV and a pre-exponential factor of 7 x 10(-14) s; the latter is typical of point-defect relaxation. The observation of an isotope effect proves that this relaxing complex involves one or more hydrogen atoms. A systematic study of the dehydrogenation process indicates, as the most likely cause of the process, a hexalrydride stoichiometry defect of type AiH(x) (x < 6) missing one or more H atoms, which gives rise to local vacancy dynamics. The formation of defects in Na3AlH6 during dehydrogenation takes place at lower temperatures in Ti-doped samples than in undoped samples. The results show that not all the hydrogen released during the decomposition reactions evolves out of the samples as gas, but part of it remains in the lattice. A model for the decomposition is proposed, where the catalytic action of Ti lowers the activation energy for breaking the bond and consequently enhances of the kinetics of the reactions. (c) 2006 Elsevier B.V. All rights reserved.

Monitoring of chemical reactions and point defect dynamics in sodium alanates

2006

Abstract

The formation of a highly mobile species during the decomposition reactions in Ti-doped and undoped sodium alanates is observed for the first time by anelastic spectroscopy. This species gives rise to a thermally activated relaxation peak around 70 K at 1 kHz, with an activation energy of 0.126 eV and a pre-exponential factor of 7 x 10(-14) s; the latter is typical of point-defect relaxation. The observation of an isotope effect proves that this relaxing complex involves one or more hydrogen atoms. A systematic study of the dehydrogenation process indicates, as the most likely cause of the process, a hexalrydride stoichiometry defect of type AiH(x) (x < 6) missing one or more H atoms, which gives rise to local vacancy dynamics. The formation of defects in Na3AlH6 during dehydrogenation takes place at lower temperatures in Ti-doped samples than in undoped samples. The results show that not all the hydrogen released during the decomposition reactions evolves out of the samples as gas, but part of it remains in the lattice. A model for the decomposition is proposed, where the catalytic action of Ti lowers the activation energy for breaking the bond and consequently enhances of the kinetics of the reactions. (c) 2006 Elsevier B.V. All rights reserved.
2006
INFM
HYDROGEN-STORAGE MATERIALS
ANELASTIC SPECTROSCOPY
NAALH4
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/120633
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