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Magnetism in nanopatterned graphite film
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10.1063/1.3033223
/content/aip/journal/apl/93/22/10.1063/1.3033223
http://aip.metastore.ingenta.com/content/aip/journal/apl/93/22/10.1063/1.3033223
View: Figures

Figures

Image of FIG. 1.
FIG. 1.

Illustration of atomic structure of supported nanoholes and nanochannels. The C atoms are shown as gray balls in the first layer and orange balls in the second layer. (a) A nine-atom up-triangular nanohole whose edge atoms sit on top of an atom in the second layer. (b) A nine-atom down-triangular nanohole whose edge atoms sit above the center of hexagon in the second layer. (c) An up-triangular nanochannel with a nine-atom nanohole in the first layer and a four-atom nanohole in the second layer. (c) A down-triangular nanochannel with a nine-atom nanohole in the first layer and a 16-atom nanohole in the second layer.

Image of FIG. 2.
FIG. 2.

The FM ground-state magnetic configuration of a four-atom triangular nanohole in free and supported graphene. White balls indicate the spin density isosurface at . (a) In a free graphene sheet. (b) Top view of (a). (c) In a graphene sheet supported on one layer of graphite film. (d) Top view of (c). (e) In a graphene sheet supported on two layers of graphite film. (f) Top view of (e).

Image of FIG. 3.
FIG. 3.

The FM ground-state magnetic configuration of a triangular nanochannel in graphite film consisting of a nine- and 16-atom nanohole in the and layer, respectively. (a) The spin density distribution within one supercell. White balls indicate the spin density isosurface at . (b) A perspective view of spin density distribution looking down through the nanochannel. (c) The band structure of the nanochannel of (a).

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/content/aip/journal/apl/93/22/10.1063/1.3033223
2008-12-03
2014-04-18
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752b84549af89a08dbdd7fdb8b9568b5 journal.articlezxybnytfddd
Scitation: Magnetism in nanopatterned graphite film
http://aip.metastore.ingenta.com/content/aip/journal/apl/93/22/10.1063/1.3033223
10.1063/1.3033223
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