Half-metallic properties of 3d transition metal atom-intercalated graphene@MS2 (M = W, Mo) hybrid structuresElectronic supplementary information (ESI) available. See DOI: 10.1039/c7nr03581k
The energetics and electronic and magnetic properties of G/MS 2 hybrid structures embedded with 3d transition metal atoms, TM@(G/MS 2 ) (G = graphene; M = W, Mo; TM = Sc-Ni), have been systematically studied using first-principles calculations. TM atoms were found to be covalently bound to two-sided...
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Zusammenfassung: | The energetics and electronic and magnetic properties of G/MS
2
hybrid structures embedded with 3d transition metal atoms, TM@(G/MS
2
) (G = graphene; M = W, Mo; TM = Sc-Ni), have been systematically studied using first-principles calculations. TM atoms were found to be covalently bound to two-sided graphene and MS
2
layers with sizable binding energies of 4.35-7.13 eV. Interestingly, a variety of electronic and magnetic properties were identified for these TM@(G/MS
2
) systems. Except for TM = Ni, all other systems were ferromagnetic, due to exchange splitting of the TM 3d orbitals. In particular, four TM@(G/MoS
2
) systems (TM = V, Mn, Fe, Co) and three TM@(G/WS
2
) systems (TM = Mn, Fe, Co) were half-metals or quasi half-metals, while Ni@(G/MoS
2
) and Ni@(G/WS
2
) were semiconductors with bandgaps of 33 and 37 meV, respectively. Further quasi-particle scattering theory analysis demonstrated that the origin of semiconducting or half-metallic properties could be well understood from the variation in on-site energy by the transition metal dichalcogenide substrate or the different on-site scattering potential induced by TM atoms. Our findings propose an effective route for manipulating the electronic and magnetic properties of graphene@MS
2
heterostructures, allowing their potential application in modern spintronic and electronic devices.
Spin density plots and band structures of TM@(G/MoS
2
) (TM = V, Mn, Fe, Ni). |
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ISSN: | 2040-3364 2040-3372 |
DOI: | 10.1039/c7nr03581k |