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Hydrogen storage in LiAlH 4: Predictions of the crystal structures and reaction mechanisms of intermediate phases from quantum mechanics

  • Jeung Ku Kang
  • , Jai Young Lee
  • , Richard P. Muller
  • , William A. Goddard
  • Korea Advanced Institute of Science and Technology
  • Sandia National Laboratories, New Mexico
  • California Institute of Technology

Résultats de recherche: Contribution à un journalArticleRevue par des pairs

Résumé

We use the density functional theory and x-ray and neutron diffraction to investigate the crystal structures and reaction mechanisms of intermediate phases likely to be involved in decomposition of the potential hydrogen storage material LiAlH 4. First, we explore the decomposition mechanism of monoclinic LiAlH 4 into monoclinic Li3AlH 6 plus face-centered cubic (fee) Al and hydrogen. We find that this reaction proceeds through a five-step mechanism with an overall activation barrier of 36.9 kcal/mol. The simulated x ray and neutron diffraction patterns from LiAlH 4 and Li3AlH 6 agree well with experimental data. On the other hand, the alternative decomposition of LiAlH 4 into LiAlH 2 plus H 2 is predicted to be unstable with respect to that through Li3AlH 6. Next, we investigate thermal decomposition of Li3AlH 6 into fee LiH plus Al and hydrogen, occurring through a four-step mechanism with an activation barrier of 17.4 kcal/mol for the rate-limiting step. In the first and second steps, two Li atoms accept two H atoms from AlH 6 to form the stable Li-H-Li-H complex. Then, two sequential H 2 desorption steps are followed, which eventually result in fee LiH plus fee Al and hydrogen: Li3AlH 6(monoclinic) → 3 LiH(fcc) + Al(fcc) + 3/2 H 2 is endothermic by 15.8 kcal/mol. The dissociation energy of 15.8 kcal/mol per formula unit compares to experimental enthalpies in the range of 9.8-23.9 kcal/mol. Finally, we explore thermal decomposition of LiH, LiH(s) + Al(s) → LiAl(s) + 1/2H 2(g) is endothermic by 4.6 kcal/mol. The B32 phase, which we predict as the lowest energy structure for LiAl, shows covalent bond characters in the Al-Al direction. Additionally, we determine that transformation of LiH plus Al into LiAlH is unstable with respect to transformation of LiH through LiAl.

langue originaleAnglais
Pages (de - à)10623-10633
Nombre de pages11
journalJournal of Chemical Physics
Volume121
Numéro de publication21
Les DOIs
étatPublié - 1 déc. 2004
Modification externeOui

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