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The Evolution of Geometric and Electronic Structures for the Hydrogen Storage on Small Tin (n = 2-7) Clusters

机译:小锡(n = 2-7)团簇上储氢的几何和电子结构的演变

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We perform first principles density functional theory calculations to investigate the geometric and electronic structures of Tin-mH2 (n=2-7, and m=1 -22). By optimizing geometric structures, we obtain the saturated configurations for hydrogen storage on small Tin (n=2-7) clusters. Interestingly, we find that with an increase in the size of the Tin cluster, the effective space for each titanium atom to adsorb hydrogen molecules decreases, as does the maximum amount of hydrogen molecules adsorbed on each titanium atom. When the size of the Tin cluster goes beyond n=5, the maximum number of hydrogen molecules adsorbed on each Ti atom keeps a constant of 3. For Ti7-mH2 clusters, the average Mulliken charges increase at first and decrease afterward, the binding energy EHb per atom of H increases when the hydrogen molecule number m changes from 1 to 3, and then, it shows a slow decrease with m increasing from 3 to 21. Furthermore, we suggest/propose that the hybridization of atomic orbitals in different atoms could be used to estimate the type of the bonds between the different atoms in clusters. As the TinmH2 clusters get bigger, due to the charge density redistribution, the interaction between titanium atoms becomes weaker and the bond length of Ti-Ti increases gradually. Meanwhile, the H-H bonds are elongated or even broken. The geometry of the host cluster is distorted from D5h into C3v when 21 H2 molecules are chemisorbed.
机译:我们执行第一原理密度泛函理论计算,以研究锡-mH2(n = 2-7,m = 1 -22)的几何和电子结构。通过优化几何结构,我们获得了在小锡(n = 2-7)簇上储氢的饱和构型。有趣的是,我们发现随着锡簇尺寸的增加,每个钛原子吸附氢分子的有效空间减少,每个钛原子上吸附的最大氢分子数量也减少。当锡簇的大小超过n = 5时,每个Ti原子上吸附的氢分子的最大数目保持恒定为3。对于Ti7-mH2簇,平均Mulliken电荷首先增加,之后减少,结合能当氢分子数m从1变为3时,H的每个原子的EHb增加,然后随着m从3增大到21而显示出缓慢的下降。此外,我们建议/建议不同原子的原子轨道杂化可以用于估计簇中不同原子之间的键的类型。随着TinmH2团簇的增大,由于电荷密度的重新分布,钛原子之间的相互作用变弱,Ti-Ti的键长逐渐增加。同时,H-H键伸长或什至断裂。当21 H2分子被化学吸附时,宿主簇的几何形状将从D5h扭曲为C3v。

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