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Evaluating the hydrogen chemisorption and physisorption energies for nitrogen-containing single-walled carbon nanotubes with different chiralities: a density functional theory study

机译:评价具有不同手性的含氮单壁碳纳米管的氢化学吸附能和物理吸附能:密度泛函理论研究

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摘要

The hydrogen adsorption energies for nitrogencontaining carbon nanotubes (N-CNTs) and for bare carbon nanotubes were calculated using the density functional theory methods at the B3LYP/6-31-G(d) level, including dispersion force corrections. The N-CNTs were finite saturated and non-saturated single-walled carbon nanotubes that contained one or more pyrimidine units, the relative positions of which defined the different configurations of the nanotube. The chemisorption of atomic hydrogen to a full exocyclic monolayer of zigzag, armchair, and chiral N-CNTs was studied as a function of the structural parameters. Zigzag N-CNTs of any configuration, with a larger number of nitrogen atoms, a small diameter and a small length, are more reactive compared to chiral and armchair N-CNTs. The presence of nitrogen in the carbon nanotubes enhances their reactivity to chemisorb atomic hydrogen, showing exothermic energy values. In contrast, the physisorption of molecular hydrogen was endothermic for most of the studied saturated N-CNTs, even when including corrections for van der Waals interactions. The endothermicity was greatest for zigzag nanotubes, then decreased for chiral nanotubes and decreased again for armchair nanotubes. In general, the endothermicity decreased for longer nanotubes, which have larger diameters, and a small number of nitrogen atoms. The results of this study suggest that, with saturated bare carbon nanotubes, saturated, and unsaturated N-CNTs could potentially have a higher capacity as hydrogen-storage media than the corresponding unsaturated carbon nanotubes.
机译:使用密度泛函理论方法在B3LYP / 6-31-G(d)级别上计算了含氮碳纳米管(N-CNT)和裸碳纳米管的氢吸附能,包括色散力校正。 N-CNT是含有一个或多个嘧啶单元的有限饱和和非饱和单壁碳纳米管,其相对位置限定了纳米管的不同构型。研究了氢原子对锯齿形,扶手椅形和手性N-CNT的完整外环单分子层的化学吸附,它是结构参数的函数。与手性和扶手椅状N-CNT相比,具有更多氮原子,较小直径和较小长度的任何构型的之字形N-CNT更具反应性。碳纳米管中氮的存在增强了它们对化学吸附原子氢的反应性,显示出放热能值。相反,对于大多数研究的饱和N-CNT,分子氢的物理吸附是吸热的,即使包括范德华相互作用的校正也是如此。之字形纳米管的吸热性最大,然后手性纳米管的吸热性降低,扶手椅状碳纳米管的吸热度再次降低。通常,对于直径较大且氮原子数较少的较长纳米管,吸热率降低。这项研究的结果表明,使用饱和的裸露碳纳米管,饱和和不饱和的N-CNT可能具有比相应的不饱和碳纳米管更高的储氢介质容量。

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