Transport gap engineering by contact geometry in graphene nanoribbons: Experimental and theoretical studies on artificial materials

Electron transport in small graphene nanoribbons is studied by microwave emulation experiments and tight-binding calculations. In particular, it is investigated under which conditions a transport gap can be observed. Our experiments provide evidence that armchair ribbons of width 3m+2 with integer m...

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Veröffentlicht in:Physical review. B 2017-01, Vol.95 (3), p.035413, Article 035413
Hauptverfasser: Stegmann, Thomas, Franco-Villafañe, John A., Kuhl, Ulrich, Mortessagne, Fabrice, Seligman, Thomas H.
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Sprache:eng
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Zusammenfassung:Electron transport in small graphene nanoribbons is studied by microwave emulation experiments and tight-binding calculations. In particular, it is investigated under which conditions a transport gap can be observed. Our experiments provide evidence that armchair ribbons of width 3m+2 with integer m are metallic and otherwise semiconducting, whereas zigzag ribbons are metallic independent of their width. The contact geometry, defining to which atoms at the ribbon edges the source and drain leads are attached, has strong effects on the transport. If leads are attached only to the inner atoms of zigzag edges, broad transport gaps can be observed in all armchair ribbons as well as in rhomboid-shaped zigzag ribbons. All experimental results agree qualitatively with tight-binding calculations using the nonequilibrium Green's function method.
ISSN:2469-9950
1098-0121
2469-9969
1550-235X
DOI:10.1103/PhysRevB.95.035413