• DocumentCode
    1420920
  • Title

    Analytical Study of Low-Field Diffusive Transport in Highly Asymmetric Bilayer Graphene Nanoribbon

  • Author

    Bhattacharya, Sitangshu ; Mahapatra, Santanu

  • Author_Institution
    Centre for Electron. Design & Technol., Indian Inst. of Sci., Bangalore, India
  • Volume
    10
  • Issue
    3
  • fYear
    2011
  • fDate
    5/1/2011 12:00:00 AM
  • Firstpage
    409
  • Lastpage
    416
  • Abstract
    We present a simplified theory of carrier backscattering coefficient in a twofold degenerate asymmetric bilayer graphene nanoribbon (BGN) under the application of a low static electric field. We show that for a highly asymmetric BGN (Δ = γ), the density of states in the lower subband increases more that of the upper, in which Δ and γ are the gap and the interlayer coupling constant, respectively. We also demonstrate that under the acoustic phonon scattering regime, the formation of two distinct sets of energy subbands signatures a quantized transmission coefficient as a function of ribbon width and provides an extremely low carrier reflection coefficient for a better Landauer conductance even at room temperature. The well-known result for the ballistic condition has been obtained as a special case of the present analysis under certain limiting conditions which forms an indirect validation of our theoretical formalism.
  • Keywords
    ballistic transport; electronic density of states; graphene; nanostructured materials; phonons; C; Landauer conductance; acoustic phonon scattering regime; ballistic condition; carrier backscattering coefficient; carrier reflection coefficient; density of states; energy subbands; highly asymmetric bilayer graphene nanoribbon; interlayer coupling constant; low static electric field; low-field diffusive transport; quantized transmission coefficient; ribbon width; twofold degenerate asymmetric bilayer graphene nanoribbon; Acoustic reflection; Acoustic scattering; Couplings; Electron mobility; Light scattering; Optical reflection; Particle scattering; Phonons; Sheet materials; Temperature; Bilayer graphene; nanoribbon; scattering; transmission;
  • fLanguage
    English
  • Journal_Title
    Nanotechnology, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    1536-125X
  • Type

    jour

  • DOI
    10.1109/TNANO.2010.2043443
  • Filename
    5416318