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Plasmonic enhancement of molecular hydrogen dissociation on metallic magnesium nanoclusters

机译:电浆氢分子的增强金属镁制备分离

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Light-driven plasmonic enhancement of chemical reactions on metal catalysts is a promising strategy to achieve highly selective and efficient chemical transformations. The study of plasmonic catalyst materials has traditionally focused on late transition metals such as Au, Ag, and Cu. In recent years, there has been increasing interest in the plasmonic properties of a set of earth-abundant elements such as Mg, which exhibit interesting hydrogenation chemistry with potential applications in hydrogen storage. This work explores the optical, electronic, and catalytic properties of a set of metallic Mg nanoclusters with up to 2057 atoms using time-dependent density functional tight-binding and density functional theory calculations. Our results show that Mg nanoclusters are able to produce highly energetic hot electrons with energies of up to 4 eV. By electronic structure analysis, we find that these hot electrons energetically align with electronic states of physisorbed molecular hydrogen, occupation of which by hot electrons can promote the hydrogen dissociation reaction. We also find that the reverse reaction, hydrogen evolution on metallic Mg, can potentially be promoted by hot electrons, but following a different mechanism. Thus, from a theoretical perspective, Mg nanoclusters display very promising behaviour for their use in light promoted storage and release of hydrogen.
机译:Light-driven电浆化学增强反应在金属催化剂是一种很有前途的实现高度选择性和策略有效的化学转换。传统上电浆的催化剂材料集中在过渡金属如盟,Ag)和铜。电浆性能越来越浓的兴趣一组的组成元素,比如毫克这展览有趣的加氢化学在储氢与潜在应用。这项工作探讨了光学、电子和一组金属的催化性质毫克2057原子发光机制使用含时密度泛函紧束缚和密度泛函理论计算。结果表明,Mg制备能够产生高能电子热能量高达4 eV。分析,我们发现,这些热电子积极结合电子的状态physisorbed氢分子,占领通过热电子可以促进氢离解反应。逆向反应,在金属氢进化毫克,可以得到热电子,但在一个不同的机制。理论的角度来看,Mg发光显示非常有前途的行为为他们使用的光促进氢的储存和释放。

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