镍功能化石墨烯纳米结构吸附氢的理论研究

ameer albyatei, Issa Zainalabddeen assaflly
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引用次数: 0

摘要

采用基于广义梯度近似方法(DFT-GGA)的密度泛函理论模拟研究了氢在镍活化、纯石墨烯和掺硼石墨烯上的吸附和储存。研究发现,相对于镍在纯石墨烯表面的结合能,镍具有较高的内聚能,使得镍原子倾向于聚集在纯石墨烯表面,从而降低了氢的存储容量。还发现,7个氢分子在含镍原子的纯活化石墨烯上的存储容量为(10.2 wt.%),平均结合能为(0.27 eV),而相同数量的氢分子的存储容量为(11.3 wt.%),平均结合能为(0.22 eV),这表明吸附过程将在环境条件下发生。石墨烯掺杂硼镍活化工艺是提高石墨烯纳米结构中氢分子平均结合能和存储容量的有效策略。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Theoretical study of hydrogen adsorption on graphene nanostructures functionalized with nickel for solid state hydrogen storage
Hydrogen adsorption and storage on nickelactivated, pure graphene and boron-doped graphene was study using density functional theory simulations based on generalized gradient approximation methods (DFT-GGA). It was found that the nickel atoms tend to clustering on the surface of pure graphene due to the high cohesive energy of nickel compared to the energy of nickel binding to the surface of pure graphene, which decrease the storage capacity of hydrogen. It was also found that the storage capacity of seven hydrogen molecules on pure and activated graphene with a nickel atom is equal to (10.2 wt.%) With an average binding energy (0.27 eV), and the storage capacity for the same number of hydrogen molecules is (11.3 wt.%) With an average binding energy (0.22 eV), This indicates that the adsorption process will take place at ambient conditions. The process of inoculating graphene-doped boron and nickel activating is an effective strategy for improving the average binding energies and the storage capacity of hydrogen molecules in the graphene nanostructures.
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