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Hydrogen storage in LiAlH4: Predictions of the crystal structures and reaction mechanisms of intermediate phases from quantum mechanics

机译:LiAlH4中的氢存储:根据量子力学预测中间相的晶体结构和反应机理

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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 LiAlH4. First, we explore the decomposition mechanism of monoclinic LiAlH4 into monoclinic Li3AlH6 plus face-centered cubic (fcc) 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 LiAlH4 and Li3AlH6 agree well with experimental data. On the other hand, the alternative decomposition of LiAlH4 into LiAlH2 plus H-2 is predicted to be unstable with respect to that through Li3AlH6. Next, we investigate thermal decomposition of Li3AlH6 into fcc 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 AlH6 to form the stable Li-H-Li-H complex. Then, two sequential H-2 desorption steps are followed, which eventually result in fcc LiH plus fcc Al and hydrogen: Li3AlH6(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. (C) 2004 American Institute of Physics.
机译:我们使用密度泛函理论以及X射线和中子衍射研究可能参与潜在储氢材料LiAlH4分解的中间相的晶体结构和反应机理。首先,我们探讨了单斜晶LiAlH4分解成单斜晶Li3AlH6以及面心立方(fcc)Al和氢的分解机理。我们发现该反应通过五步机制进行,总活化势垒为36.9 kcal / mol。 LiAlH4和Li3AlH6的模拟X射线和中子衍射图与实验数据吻合良好。另一方面,相对于通过Li 3 AlH 6,LiAl H 4交替分解为Li AlH 2加H-2被认为是不稳定的。接下来,我们研究了限速步骤中通过活化步长为17.4 kcal / mol的四步机理将Li3AlH6热分解为fcc LiH加Al和氢的过程。在第一步和第二步中,两个Li原子接受AlH6的两个H原子,形成稳定的Li-H-Li-H络合物。然后,依次进行两个H-2解吸步骤,最终导致fcc LiH加fcc Al和氢:Li3AlH6(单斜晶)-> 3 LiH(fcc)+ Al(fcc)+3/2 H-2吸热15.8 kcal / mol。每个配方单位15.8 kcal / mol的解离能与9.8-23.9 kcal / mol的实验焓相比较。最后,我们探索了LiH,LiH(s)+ Al(s)-> LiAl(s)+ 1 / 2H(2)(g)的吸热分解速率为4.6 kcal / mol的热分解。我们预测B32相是LiAl的最低能量结构,它在Al-Al方向上显示出共价键特征。此外,我们确定,相对于通过LiAl转化LiH,LiH加Al转化为LiAlH是不稳定的。 (C)2004年美国物理研究所。

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