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The performance of adsorption, dissociation and diffusion mechanism of hydrogen on the Ti-doped ZrCo(110) surface

机译:Ti掺杂ZrCo(110)表面上氢气吸附,解离和扩散机理的性能

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摘要

Compared with pristine ZrCo(110), the adsorption, dissociation, and successive diffusion of hydrogen on the Ti-decorated ZrCo(110) have been investigated based on first-principles calculation. For the purpose of having fast absorption kinetics, both activation processes need to overcome small energy barriers. The adsorption energies of molecular as well as atomic hydrogen on the Ti-decorated ZrCo(110) surface were calculated using first-principles calculations with the periodic density functional theory (DFT). The H-2 molecule on ZrCo(110) and Ti-doped ZrCo(110) surfaces could be spontaneously partially dissociated due to the interaction with the substrate surfaces, producing H atoms strongly chemisorbed to the hollow sites. The H-2 dissociation energy barrier and the H diffusion barrier were also determined. Our results show that the activation energy for H-2 dissociation on the decorated surface (0.052 eV) is much smaller than that of the pure surface (0.524 eV), elucidating that the activation condition of H-2 on the pure ZrCo(110) is more severe than that on the Ti-doped surface. Particularly, Ti-decoration facilitates the H-2 dissociation. Moreover, the re-desorption performance of the two dissociated H atoms is improved by lowering the energetic barrier from 1.798 eV (on the pure surface) to 1.315 eV (on the decorated surface). The calculations also reveal that decorating the surface with Ti eliminates the barrier for the into-bulk penetration of a hydrogen atom. Based on the local density of states, the Bader charge and differential charge density, as well as the influence of the Ti atom on topological properties were analyzed. Theoretical results presented in this study are generally in well accordance with the available theoretical and experimental data.
机译:与原始ZrCO(110)相比,基于第一原理计算研究了对Ti装饰ZrCO(110)的吸附,解离和连续扩散。出于具有快速吸收动力学的目的,所有激活过程都需要克服小的能量屏障。使用具有周期性密度功能理论(DFT)的第一原理计算来计算分子和原子氢的分子以及原子氢的吸附能量。由于与基板表面的相互作用,ZrCo(110)和Ti掺杂的ZrCo(110)表面上的H-2分子可以自发地分离,产生H原子强烈地与中空位点化。还确定了H-2解离能屏障和H扩散屏障。我们的研究结果表明,装饰表面上的H-2解离的激活能量远小于纯表面(0.524eV)的能量,阐明了纯ZrCO上的H-2的活化条件(110)比Ti掺杂表面更严重。特别是,Ti装饰有助于H-2解离。此外,通过从1.798eV(纯表面上)降低到1.315eV(在装饰表面上)来改善两种离解的H原子的再解离性能。计算还揭示了用TI装饰表面,消除了氢原子的散装渗透的屏障。基于局部密度,分析了较糟糕的电荷和差分电荷密度,以及Ti原子对拓扑性质的影响。本研究呈现的理论结果通常符合可用的理论和实验数据。

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    Sichuan Univ Inst Atom &

    Mol Phys Chengdu 610064 Sichuan Peoples R China;

    Chengdu Univ Informat Technol Coll Optoelect Technol Chengdu 610225 Sichuan Peoples R China;

    Sichuan Univ Coll Math Chengdu 610064 Sichuan Peoples R China;

    Sci &

    Technol Surface Phys &

    Chem Lab POB 9071-35 Jiangyou 621907 Peoples R China;

    Sci &

    Technol Surface Phys &

    Chem Lab POB 9071-35 Jiangyou 621907 Peoples R China;

    Sichuan Univ Inst Atom &

    Mol Phys Chengdu 610064 Sichuan Peoples R China;

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  • 正文语种 eng
  • 中图分类 物理学;化学;
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