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  2. Graphene production techniques - Wikipedia

    en.wikipedia.org/wiki/Graphene_production_techniques

    A rapidly increasing list of graphene production techniques have been developed to enable graphene's use in commercial applications. [1]Isolated 2D crystals cannot be grown via chemical synthesis beyond small sizes even in principle, because the rapid growth of phonon density with increasing lateral size forces 2D crystallites to bend into the third dimension. [2]

  3. Electronic properties of graphene - Wikipedia

    en.wikipedia.org/wiki/Electronic_properties_of...

    Graphene doped with various gaseous species (both acceptors and donors) can be returned to an undoped state by gentle heating in vacuum. [22] [24] Even for dopant concentrations in excess of 10 12 cm −2 carrier mobility exhibits no observable change. [24] Graphene doped with potassium in ultra-high vacuum at low temperature can reduce ...

  4. Graphene - Wikipedia

    en.wikipedia.org/wiki/Graphene

    Graphene (/ ˈ ɡ r æ f iː n /) [1] is a carbon allotrope consisting of a single layer of atoms arranged in a honeycomb planar nanostructure. [2] [3] The name "graphene" is derived from "graphite" and the suffix -ene, indicating the presence of double bonds within the carbon structure.

  5. Epitaxial graphene growth on silicon carbide - Wikipedia

    en.wikipedia.org/wiki/Epitaxial_graphene_growth...

    Epitaxial graphene growth on silicon carbide (SiC) by thermal decomposition is a method to produce large-scale few-layer graphene (FLG). Graphene is one of the most promising nanomaterials for the future because of its various characteristics, like strong stiffness and high electric and thermal conductivity.

  6. Dirac cone - Wikipedia

    en.wikipedia.org/wiki/Dirac_cone

    In physics, Dirac cones are features that occur in some electronic band structures that describe unusual electron transport properties of materials like graphene and topological insulators. [ 1 ] [ 2 ] [ 3 ] In these materials, at energies near the Fermi level , the valence band and conduction band take the shape of the upper and lower halves ...

  7. Liquid phase exfoliation - Wikipedia

    en.wikipedia.org/wiki/Liquid_phase_exfoliation

    Liquid phase exfoliation is different from other liquid exfoliation methods, for example the production of graphene oxide, because it is much less destructive, leaving minimal defects in the basal planes of the nanosheets. It has recently emerged that LPE can also be used to convert non-layered crystals into quasi-2D nanoplatelets. [12]

  8. Graphene nanoribbon - Wikipedia

    en.wikipedia.org/wiki/Graphene_nanoribbon

    Graphene nanoribbons (GNRs, also called nano-graphene ribbons or nano-graphite ribbons) are strips of graphene with width less than 100 nm. Graphene ribbons were introduced as a theoretical model by Mitsutaka Fujita and coauthors to examine the edge and nanoscale size effect in graphene.

  9. Dirac matter - Wikipedia

    en.wikipedia.org/wiki/Dirac_matter

    The unique transport properties and the semimetallic state of graphene are the result of the delocalized electrons occupying these p z orbitals. [12] The semimetallic state corresponds to a linear crossing of energy bands at the and ′ points of graphene's hexagonal Brillouin zone.