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Dynamics of H-2 dissociation on the close-packed (111) surface of the noblest metal: H-2 + Au(111)

机译:贵金属的紧密堆积(111)表面上的H-2解离动力学:H-2 + Au(111)

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We have performed calculations on the dissociative chemisorption of H-2 on un-reconstructed and reconstructed Au(111) with density functional theory, and dynamics calculations on this process on un-reconstructed Au(111). Due to a very late barrier for dissociation, H-2 + Au(111) is a candidate H-2-metal system for which the dissociative chemisorption could be considerably affected by the energy transfer to electron-hole pairs. Minimum barrier geometries and potential energy surfaces were computed for six density functionals. The functionals tested yield minimum barrier heights in the range of 1.15-1.6 eV, and barriers that are even later than found for the similar H-2 + Cu(111) system. The potential energy surfaces have been used in quasi-classical trajectory calculations of the initial (v,J) state resolved reaction probability for several vibrational states v and rotational states J of H-2 and D-2. Our calculations may serve as predictions for state-resolved associative desorption experiments, from which initial state-resolved dissociative chemisorption probabilities can be extracted by invoking detailed balance. The vibrational efficacy eta(v=0 -> 1) reported for D-2 dissociating on un-reconstructed Au(111) (about 0.9) is similar to that found in earlier quantum dynamics calculations on H-2 + Ag(111), but larger than found for D-2 + Cu(111). With the two functionals tested most extensively, the reactivity of H-2 and D-2 exhibits an almost monotonic increase with increasing rotational quantum number J. Test calculations suggest that, for chemical accuracy (1 kcal/mol), the herringbone reconstruction of Au(111) should be modeled. Published by AIP Publishing.
机译:我们利用密度泛函理论对未重构和重构的Au(111)上H-2的解离化学吸附进行了计算,并对未重构的Au(111)进行了该过程的动力学计算。由于离解的障碍非常晚,H-2 + Au(111)是候选的H-2-金属系统,其离解化学吸附可能会受到向电子-空穴对的能量转移而受到很大影响。计算了六个密度泛函的最小势垒几何形状和势能表面。测试的功能产生的最小势垒高度在1.15-1.6 eV范围内,并且势垒甚至比类似的H-2 + Cu(111)系统发现的势垒还要晚。势能面已用于H-2和D-2几个振动状态v和旋转状态J的初始(v,J)状态解析的反应概率的准经典轨迹计算中。我们的计算可以作为状态解析的缔合解吸实验的预测,可以通过调用详细的平衡从中提取初始的状态解析的解离化学吸附概率。报告的D-2在未重建的Au(111)(约0.9)上解离的振动效率eta(v = 0-> 1)与先前在H-2 + Ag(111)的量子动力学计算中发现的相似,但比D-2 + Cu(111)的大。在对两种功能进行最广泛的测试后,H-2和D-2的反应性随旋转量子数J的增加而呈现出几乎单调的增加。测试计算表明,对于化学精度(1 kcal / mol),人字形的Au重构(111)应该建模。由AIP Publishing发布。

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