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Li and Na Adsorption on Graphene and Graphene Oxide Examined by Density Functional Theory, Quantum Theory of Atoms in Molecules, and Electron Localization Function

机译:密度泛函理论,分子原子量子的量子理论,电子定位函数,Li和Na吸附石墨烯和石墨烯氧化物。

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Adsorption of Li and Na on pristine and defective graphene and graphene oxide (GO) is studied using density functional theory (DFT) structural and electronic calculations, quantum theory of atoms in molecules (QTAIM), and electron localization function (ELF) analyses. DFT calculations show that Li and Na adsorptions on pristine graphene are not stable at all metal coverages examined here. However, the presence of defects on graphene support stabilizes both Li and Na adsorptions. Increased Li and Na coverages cause metal nucleation and weaken adsorption. Defective graphene is associated with the presence of band gaps and, thus, Li and Na adsorptions can be used to tune these gaps. Electronic calculations show that Li- and Na-graphene interactions are Coulombic: as Li and Na coverages increase, the metal valences partially hybridize with the graphene bands and weaken metal-graphene support interactions. However, for Li adsorption on single vacancy graphene, QTAIM, ELF, and overlap populations calculations show that the Li-C bond has some covalent character. The Li and Na adsorptions on GO are significantly stronger than on graphene and strengthen upon increased coverages. This is due to Li and Na forming bonds with both carbon and oxygen GO atoms. QTAIM and ELF are used to analyze the metal-C and metal-metal bonds (when metal nucleation is present). The Li and Na clusters may contain both covalent and metallic intra metal-metal bonds: This effect is related to the adsorption support selection. ELF bifurcation diagrams show individual metal-C and metal-metal interactions, as Li and Na are adsorbed on graphene and GO, at the metal coverages examined here.
机译:利用密度泛函理论(DFT)结构和电子计算,在分子(QTaim)中的原子原子的量子理论和电子定位函数(ELF)分析,研究了Li和Na对原始和缺陷石墨烯和石墨烯和石墨烯(GO)的吸附。 DFT计算表明,原始石墨烯上的Li和Na吸附在此处检查的所有金属覆盖范围内不稳定。然而,石墨烯载体上存在缺陷稳定了Li和Na吸附。增加李和NA覆盖率导致金属成核并减弱吸附。有缺陷的石墨烯与带间隙的存在相关,因此,Li和Na吸附可用于调谐这些间隙。电子计算表明,Li-和Na-石墨烯相互作用是Coulombic:随着Li和Na覆盖率的增加,金属效果与石墨烯带部分杂交并削弱金属 - 石墨烯支持相互作用。然而,对于锂吸附单位空位石墨烯,Q值,ELF和重叠群体计算表明,Li-C键具有一些共价特征。 Li和Na Adsorptions比石墨烯明显强,并在增加的覆盖范围内加强。这是由于Li和Na形成碳和氧气的粘合。 Qtaim和ELF用于分析金属-C和金属 - 金属键(当存在金属成核时)。 Li和Na簇可含有共价和金属内金属 - 金属键:这种效果与吸附支持选择有关。 ELF分叉图显示单独的金属-C和金属 - 金属相互作用,因为Li和Na被吸附在石墨烯上并在此检查的金属覆盖物上。

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