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Hydrogen Adsorption Mechanism of SiC Nanocones

机译:SiC纳米酮的氢吸附机理

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Due to rapid depletion of fossil energy sources and increasing the environmental pollution through high fossil energy consumption, an alternative renewable and clean energy carrier as hydrogen is requested more investigations in order to get the optimal request by DOE. In this study, a deepest study on SiC nanocones is done including both of the geometrical and electronic properties of all possible five different disclination angles as a function of size using density functional (DFT) calculations at the B3LYP/6-31g level of theory. Then the hydrogen adsorption mechanism is investigated on three different sites: H~(S1) (above the first neighbor atom of the apex atoms), H~(S2) (above one atom of the apex atoms) and H~(S3) (above one atom far from the apex atoms). Our calculations show that the most candidate SiC nanocone structure for hydrogen storage is Si_(41)N_(49)H_(10)-HS~(2)-M1-Type 2 with disclination angle 300 ˚ . In addition, our results indicate that the hydrogen adsorption induced the energy gap to decrease. Hence, these results indicate that the SiCNCs can be considered as a good candidate for hydrogen storage.
机译:由于化石能源的快速消耗,并通过高化石能耗增加了环境污染,因此要求替代的可再生能源载体作为氢气,以便获得DOE的最佳请求。在这项研究中,完成了对SiC纳米核查的最深切研究,包括所有可能的五种不同公开角度的几何和电子性质,作为使用B3Lyp / 6-31g理论水平的密度官能(DFT)计算的尺寸的函数。然后在三个不同的位置研究氢吸附机制:H〜(S1)(上方的顶点原子的原子上方),H〜(S2)(顶端原子的一个原子)和H〜(S3)(远高于顶点原子的原子)。我们的计算表明,用于储氢的最多候选SiC纳米织物结构是Si_(41)N_(49)H_(10)-HS〜(2)-M1型2,其具有优化角度300˚ 。此外,我们的结果表明,氢吸附诱导能量差距降低。因此,这些结果表明SiCNC可以被认为是储氢的良好候选者。

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