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首页> 外文期刊>The Journal of Chemical Physics >Dissociation and recombination of D_2 on Cu(111): Ab initio molecular dynamics calculations and improved analysis of desorption experiments
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Dissociation and recombination of D_2 on Cu(111): Ab initio molecular dynamics calculations and improved analysis of desorption experiments

机译:D_2在Cu(111)上的解离与重组:从头算分子动力学计算和解吸实验的改进分析

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摘要

Obtaining quantitative agreement between theory and experiment for dissociative adsorption of hydrogen on and associative desorption of hydrogen from Cu(111) remains challenging. Particularly troubling is the fact that theory gives values for the high energy limit to the dissociative adsorption probability that is as much as two times larger than experiment. In the present work we approach this discrepancy in three ways. First, we carry out a new analysis of the raw experimental data for D_2 associatively desorbing from Cu(111). We also perform new ab initio molecular dynamics (AIMD) calculations that include effects of surface atom motion. Finally, we simulate time-of-flight (TOF) spectra from the theoretical reaction probability curves and we directly compare them to the raw experimental data. The results show that the use of more flexible functional forms for fitting the raw TOF spectra gives fits that are in slightly better agreement with the raw data and in considerably better agreement with theory, even though the theoretical reaction probabilities still achieve higher values at high energies. The mean absolute error (MAE) for the energy E_0 at which the reaction probability equals half the experimental saturation value is now lower than 1 kcal/mol, the limit that defines chemical accuracy, while a MAE of 1.5 kcal/mol was previously obtained. The new AIMD results are only slightly different from the previous static surface results and in slightly better agreement with experiment.
机译:在理论上和实验上获得氢在Cu(111)上的解离吸附和缔合解吸的定量协议仍然具有挑战性。特别令人困扰的是,理论给出了高能量极限值的解离吸附概率,该值是实验值的两倍之多。在当前的工作中,我们通过三种方式解决这一差异。首先,我们对从Cu(111)上解吸的D_2的原始实验数据进行了新的分析。我们还将执行新的从头算分子动力学(AIMD)计算,包括表面原子运动的影响。最后,我们从理论反应概率曲线模拟飞行时间(TOF)光谱,并将其与原始实验数据直接进行比较。结果表明,使用更灵活的函数形式拟合原始TOF谱图可得到与原始数据稍有一致的拟合,并且与理论的拟合也更好,即使理论上的反应概率在高能下仍能获得更高的值。现在,能量E_0的平均绝对误差(MAE)(在该概率下,反应概率等于实验饱和度值的一半)低于1 kcal / mol(定义化学精度的极限),而先前已获得1.5 kcal / mol的MAE。新的AIMD结果与以前的静态表面结果仅稍有不同,并且与实验的一致性更好。

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