• Title of article

    Magnetoelectronic properties of nanographite ribbons

  • Author/Authors

    C.P. Chang، نويسنده , , C.L. Lu، نويسنده , , F.L. Shyu، نويسنده , , R.B. Chen، نويسنده , , Alex Y.C. Huang، نويسنده , , M.F. Lin، نويسنده ,

  • Issue Information
    دوهفته نامه با شماره پیاپی سال 2005
  • Pages
    16
  • From page
    82
  • To page
    97
  • Abstract
    Magnetoelectronic structures of the AA- and AB-stacked nanographite ribbons, which strongly depend on magnitude and direction of magnetic field, ribbon edges, and interribbon interactions, are studied within the frame of tight-binding model. First, the origins of Landau subbands and additional spectra, induced by the perpendicular magnetic field B⊥, chiefly changing the intraribbon interaction, are analytically studied in the zigzag systems. This method allows us to intuitively understand the magnetoband structures of the finite size systems. Then, the interribbon interactions modify Landau subbands and change energy dispersions, energy spacing, bandwidth and oscillation period of Landau subbands. On the other hand, the parallel magnetic field B∥ changes the interribbon interactions and leads to the Landau levels along View the MathML source. Furthermore, B∥ can induce the metal–insulator transition in the AB-stacked armchair ribbons. Above all, magnetic field and interribbon interactions vitalize the magnetoband structures. So, there are rich structures in density of states: sharp peaks, square-root peaks, logarithmic divergences and oscillating structures. Finally, DOS can clearly exhibit 0D, 1D and 2D characteristics. And this specific is expected to have great effects on the physical properties, e.g. optical, magnetic and transport properties, of the stacked ribbons.
  • Keywords
    Nanographite ribbons , Magnetoelectronic properties , Tight-binding model
  • Journal title
    Physica E Low-dimensional Systems and Nanostructures
  • Serial Year
    2005
  • Journal title
    Physica E Low-dimensional Systems and Nanostructures
  • Record number

    1051611