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首页> 外文期刊>The Journal of Chemical Physics >Coverage effects in the adsorption of H _2 on Pd(100) studied by ab initio molecular dynamics simulations
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Coverage effects in the adsorption of H _2 on Pd(100) studied by ab initio molecular dynamics simulations

机译:从头算分子动力学模拟研究H _2在Pd(100)上的吸附覆盖效应

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The interaction of hydrogen with palladium surfaces represents one of the model systems for the study of the adsorption and absorption at metal surfaces. Theoretical gas-surface dynamics studies have usually concentrated on the adsorption dynamics on clean surfaces. Only recently it has become possible, based on advances in the electronic structure codes and improvements in the computer power, to address the much more complex problem of the adsorption dynamics on precovered surfaces. Here, I present ab initio molecular dynamics (AIMD) simulations based on periodic density functional theory (DFT) calculations of the adsorption of H _2 on hydrogen-precovered Pd(100) for a broad variety of different hydrogen coverage structures. The stability of the adsorbate structures and the adsorption dynamics are analyzed in detail. Calculated sticking probabilities are larger than expected for pure site-blocking consistent with experimental results. It turns out that the adsorption dynamics on the strongly corrugated surfaces depends sensitively on the dynamic response of the substrate atoms upon the impact of the impinging H _2 molecules. In addition, for some structures the adsorption probability was evaluated as a function of the kinetic energy. Adsorbate structures corresponding to the same coverage but with different arrangements of the adsorbed atoms can lead to a qualitatively different dependence of the adsorption probability on the kinetic energy changing also the order of the preferred structures, as far as the adsorption is concerned, as a function of the kinetic energy. This indicates that dynamical effects such as steering and dynamical trapping play an important role in the adsorption on these precovered substrates.
机译:氢与钯表面的相互作用代表了研究金属表面吸附和吸收的模型系统之一。理论气体表面动力学研究通常集中在清洁表面上的吸附动力学上。直到最近,基于电子结构代码的进步和计算机能力的提高,才有可能解决预覆盖表面上更为复杂的吸附动力学问题。在这里,我介绍了基于周期性密度泛函理论(DFT)的从头算分子动力学(AIMD)模拟,该计算是针对各种不同的氢覆盖结构,H_2在氢覆盖的Pd(100)上的吸附。详细分析了吸附物结构的稳定性和吸附动力学。与实验结果一致,计算出的粘着概率大于纯位阻的预期值。结果表明,强波纹表面上的吸附动力学敏感地取决于底物原子在撞击的H _2分子的撞击下的动态响应。另外,对于某些结构,吸附概率根据动能进行评估。对应于相同覆盖率但具有不同排列的被吸附原子的吸附物结构可能导致吸附概率对动能的定性不同,就吸附而言,优选的结构的阶次也随功能变化动能这表明诸如转向和动态陷落之类的动力学效应在这些预先覆盖的基底上的吸附中起着重要作用。

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