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A DFT investigation on group 8B transition metal-doped silicon carbide nanotubes for hydrogen storage application

机译:DFT研究用于氢存储的8B族过渡金属掺杂碳化硅纳米管

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The binding of group 8B transition metal (TMs) on silicon carbide nanotubes (SiCNT) hydrogenated edges and the adsorption of hydrogen molecule on the pristine and TM-doped SiCNTs were investigated using the density functional theory method. The B3LYP/LanL2DZ method was employed in all calculations for the considered structural, adsorption, and electronic properties. The Os atom doping on the SiCNT is found to be the strongest binding. The hydrogen molecule displays a weak interaction with pristine SiCNT, whereas it has a strong interaction with TM-doped SiCNTs in which the Os-doped SiCNT shows the strongest interaction with the hydrogen molecule. The improvement in the adsorption abilities of hydrogen molecule onto TM-doped SiCNTs is due to the protruding structure and the induced charge transfer between TM-doped SiCNT and hydrogen molecule. These observations point out that TM-doped SiCNTs are highly sensitive toward hydrogen molecule. Moreover, the adsorptions of 2-5 hydrogen molecules on TM-doped SiCNT were also investigated. The maximum storage number of hydrogen molecules adsorbed on the first layer of TM-doped SiCNTs is 3 hydrogen molecules. Therefore, TM-doped SiCNTs are suitable to be sensing and storage materials for hydrogen gas. (C) 2018 Elsevier B.V. All rights reserved.
机译:使用密度泛函理论方法研究了碳化硅纳米管(SiCNT)氢化边缘上8B族过渡金属(TMs)的结合以及原始和掺杂TM的SiCNTs上氢分子的吸附。在所有计算中都采用B3LYP / LanL2DZ方法来考虑结构,吸附和电子性质。发现在SiCNT上的Os原子掺杂是最强的结合。氢分子与原始SiCNT的相互作用弱,而与TM掺杂的SiCNT的相互作用强,其中Os掺杂的SiCNT与氢分子的相互作用最强。氢分子在掺杂TM的SiCNT上的吸附能力的提高归因于TM掺杂的SiCNT与氢分子之间的突出结构和感应的电荷转移。这些观察结果指出,TM掺杂的SiCNT对氢分子高度敏感。此外,还研究了TM掺杂SiCNT上2-5个氢分子的吸附。吸附在TM掺杂SiCNT的第一层上的氢分子的最大存储数量为3个氢分子。因此,TM掺杂的SiCNT适合用作氢气的传感和存储材料。 (C)2018 Elsevier B.V.保留所有权利。

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