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Insight into anomalous hydrogen adsorption on rare earth metal decorated on 2-dimensional hexagonal boron nitride: a density functional theory study

机译:在二维六边形氮化物上装饰的稀土金属上的异常氢吸附:密度泛函理论研究

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Hydrogen interaction with metal atoms is of prime focus for many energy related applications like hydrogen storage, hydrogen evolution using catalysis, etc. Although hydrogen binding with many main group alkaline and transition metals is quite well understood, its binding properties with lanthanides are not well reported. In this article, by density functional theory studies, we show how a rare earth metal, cerium, binds with hydrogen when decorated over a heteropolar 2D material, hexagonal boron nitride. Each cerium adatom is found to bind eight hydrogen molecules which is a much higher number than has been reported for transition metal atoms. However, the highest binding energy occurs at four hydrogen molecules. This anomaly, therefore, is investigated in the present article using first-principles calculations. The number density of hydrogen molecules adsorbed over the cerium adatom is explained by investigating the electronic charge volume interactions owing to a unique geometrical arrangement of the guest hydrogen molecules. The importance of geometrical encapsulation in enhancing electronic interactions is explained.
机译:与金属原子的氢相互作用是许多能量相关应用的主要关注,如催化剂,催化作用等氢气进化等。尽管与许多主要组碱性和过渡金属的氢结合很好地理解,但其与镧系元素的结合性质并不良好。在本文中,通过密度函数理论研究,我们展示了如何在六角形氮化物上装饰时稀土金属,铈与氢气结合。发现每个铈吸附物结合八个氢分子,其数量远远高于过渡金属原子的数量。然而,在四个氢分子中发生最高的结合能量。因此,这种异常在本文中使用了第一原理计算来研究本文。通过研究客体氢分子的独特几何布置,通过研究电子电荷体积相互作用来解释吸附在铈adatom上的氢分子的数量密度。解释了几何封装在提高电子交互方面的重要性。

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