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Co-doped graphene sheets as a novel adsorbent for hydrogen storage: DFT and DFT-D3 correction dispersion study

机译:共掺杂石墨烯片作为新型储氢吸附剂:DFT和DFT-D3校正分散研究

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In this study, transition metals (TM) such as palladium (Pd) have been introduced on co-doped graphene and defect graphene sheets with nitrogen and boron ad-atoms to investigate the potentials of new adsorbents for hydrogen storage. The first principle studies using density functional theory (DFT) and DFT-D3 correction dispersion were undertaken to calculate the adsorption energy of hydrogen molecule on the graphene sheet. The results showed that applying Pd transition metal could enhance adsorption energy of hydrogen molecules towards pristine sheet. The main problem in applying transition metal on graphene sheets was concerned with clustering. However, the current defects in graphene sheets prevent clustering event. Our simulation results suggested that these defects reduced hydrogen adsorption and substitute dopants such as nitrogen and boron together on graphene sheets could improve the adsorption energy. Thus, two various forms of Pd decorated N B co-doped as hexagonal and double carbon vacancy (DCV) were introduced as new structures for hydrogen storage. A physical adsorption, which is appropriate for reversible hydrogen storage, was implemented for both novel adsorbents. In the two various forms of N B co-doped structures, DCV had the optimum adsorption behavior as adsorption energy level and density of state (DOS) phenomena. Moreover, the results of adsorption energy using DFT method were consistent with that of DFT-D3 correction dispersion and higher amounts of adsorption energy in DFT-D3 method were obtained. Finally, results introduced Pd decorated N B co-doped graphene sheets as a novel material for hydrogen storage. (C) 2018 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:在这项研究中,已在具有氮和硼原子的共掺杂石墨烯和缺陷石墨烯片材上引入了诸如钯(Pd)之类的过渡金属(TM),以研究新型吸附剂用于储氢的潜力。首先进行了使用密度泛函理论(DFT)和DFT-D3校正分散的原理研究,以计算氢分子在石墨烯片材上的吸附能。结果表明,使用Pd过渡金属可以提高氢分子对原始片的吸附能。在石墨烯片材上施加过渡金属的主要问题与聚集有关。然而,石墨烯片中的当前缺陷阻止了聚集事件。我们的模拟结果表明,这些缺陷减少了氢的吸附,而石墨烯片上的替代掺杂物(如氮和硼)可以提高吸附能。因此,引入了两种形式的共掺杂为六方和双碳空位(DCV)的Pd装饰的N B作为新的储氢结构。两种新型吸附剂均采用了适合于可逆氢存储的物理吸附。在两种不同形式的N B共掺杂结构中,DCV具有最佳的吸附行为,即吸附能级和态密度(DOS)现象。此外,使用DFT方法的吸附能结果与DFT-D3校正分散液的结果一致,并且在DFT-D3方法中获得了更高的吸附能。最后,结果介绍了Pd装饰的N B共掺杂石墨烯片作为一种新型的储氢材料。 (C)2018氢能出版物有限公司。由Elsevier Ltd.出版。保留所有权利。

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