4.7 Article

Ca(AlH4)2, CaAlH5, and CaH2+6LiBH4:: Calculated dehydrogenation enthalpy, including zero point energy, and the structure of the phonon spectra

Journal

JOURNAL OF CHEMICAL PHYSICS
Volume 128, Issue 23, Pages -

Publisher

AMER INST PHYSICS
DOI: 10.1063/1.2937917

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The dehydrogenation enthalpies of Ca(AlH4)(2), CaAlH5, and CaH2+6LiBH(4) have been calculated using density functional theory calculations at the generalized gradient approximation level. Harmonic phonon zero point energy (ZPE) corrections have been included using Parlinski's direct method. The dehydrogenation of Ca(AlH4)(2) is exothermic, indicating a metastable hydride. Calculations for CaAlH5 including ZPE effects indicate that it is not stable enough for a hydrogen storage system operating near ambient conditions. The destabilized combination of LiBH4 with CaH2 is a promising system after ZPE-corrected enthalpy calculations. The calculations confirm that including ZPE effects in the harmonic approximation for the dehydrogenation of Ca(AlH4)(2), CaAlH5, and CaH2+6LiBH(4) has a significant effect on the calculated reaction enthalpy. The contribution of ZPE to the dehydrogenation enthalpies of Ca(AlH4)(2) and CaAlH5 calculated by the direct method phonon analysis was compared to that calculated by the frozen-phonon method. The crystal structure of CaAlH5 is presented in the more useful standard setting of P2(1)/c symmetry and the phonon density of states of CaAlH5, significantly different to other common complex metal hydrides, is rationalized. (C) 2008 American Institute of Physics.

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