Wang, Y, Zhang F, Stumpf R, Lin P, Chou MY.
2011.
Catalytic effect of near-surface alloying on hydrogen interaction on the aluminum surface, May. Physical Review B. 83:5., Number 19
AbstractA small amount of catalyst, such as Ti, was found to greatly improve the kinetics of hydrogen reactions in the prototypical hydrogen storage compound sodium alanate (NaAlH(4)). We propose a near-surface alloying mechanism for the rehydrogenation cycle based on a detailed analysis of available experimental data as well as first-principles calculations. The calculated results indicate that the catalyst remains at subsurface sites near the Al surface, reducing the dissociation energy barrier of H(2). The binding between Ti and Al modifies the surface charge distribution, which facilitates hydrogen adsorption and enhances hydrogen mobility on the surface.
Zhang, F, Wang Y, Chou MY.
2011.
Stability of the hydrogen-storage compound Li(6)Mg(NH)(4) from first principles, Jan. Physical Review B. 83:4., Number 1
AbstractIt has been demonstrated that replacing Li(2)NH with the mixed imide Li(2)Mg(NH)(2) improves the reaction conditions for the hydrogen-storage system Li(2)NH + H(2) <-> LiNH(2) + LiH, at the expense of reducing the gravitational hydrogen capacity from 6.5% to 5.6%. In this article, we report from first-principles calculations a possible mixed imide Li(6)Mg(NH)(4) that has less Mg concentration and higher gravimetric capacity for hydrogen storage than Li(2)Mg(NH)(2). We find that Li(6)Mg(NH)(4) is thermodynamically more stable than the phase-separated mixture of Li(2)Mg(NH)(2) and Li(2)NH over a large temperature range. The reaction LiH + 1/4Mg(NH(2))(2) + 1/2LiNH(2) <-> 1/4Li(6)Mg(NH)(4) + H(2) can be completed via two steps and releases 6.0 wt % hydrogen in total, at a temperature about 40 degrees C lower than that for the cycling between LiNH(2) and Li(2)NH.
Zhang, F, Wang Y, Chou MY.
2011.
Theoretical study of the vibrational properties of NaAlH(4) with AlH(3) vacancies. Faraday Discussions. 151:243-251.
AbstractIt has been suggested that the diffusion of AlH(3) vacancies plays an essential role in the decomposition of NaAlH(4), a prototypical material for hydrogen storage. We find from first-principles calculations that the AlH(3) vacancy induces several isolated vibrational modes that are highly localized in the vacancy region with frequencies within the phonon gaps of pure NaAlH(4) in both the a and g phases. Thus, the proposed existence of AlH(3) vacancies in the dehydrogenation reaction of NaAlH(4) can be possibly confirmed with the experimental detection of these unique vibrational modes associated with the AlH(3) vacancy.