• DocumentCode
    1365216
  • Title

    Ultralow-Voltage Bilayer Graphene Tunnel FET

  • Author

    Fiori, Gianluca ; Iannaccone, Giuseppe

  • Author_Institution
    Dipt. di Ing. dell´´Inf.: Elettron., Inf., Telecomun., Univ. di Pisa, Pisa, Italy
  • Volume
    30
  • Issue
    10
  • fYear
    2009
  • Firstpage
    1096
  • Lastpage
    1098
  • Abstract
    In this letter, we propose the bilayer graphene tunnel field-effect transistor (TFET) as a device suitable for fabrication and circuit integration with present-day technology. It provides high I on/I off ratio at ultralow supply voltage, without the limitations in terms of prohibitive lithography and patterning requirements for circuit integration of graphene nanoribbons. Our investigation is based on the solution of the coupled Poisson and Schrodinger equations in three dimensions, within the non-equilibrium Green´s function formalism on a tight binding Hamiltonian. We show that the small achievable gap of only few hundreds of millielectronvolts is still enough for promising TFET operation, providing a large I on/I off ratio in excess of 103 even for a supply voltage of only 0.1 V. A key to this performance is the low quantum capacitance of bilayer graphene, which permits to obtain an extremely small subthreshold swing S smaller than 20 mV/dec at room temperature.
  • Keywords
    Green´s function methods; Poisson equation; Schrodinger equation; field effect transistors; lithography; tunnel transistors; Poisson equations; Schrodinger equations; bilayer graphene tunnel field-effect transistor; graphene nanoribbons; low quantum capacitance; nonequilibrium Green´s function; prohibitive lithography; tight binding Hamiltonian; ultralow-voltage bilayer graphene tunnel FET; Bilayer graphene; low-power device; nonequilibrium Green´s function (NEGF); tunnel field-effect transistor (TFET);
  • fLanguage
    English
  • Journal_Title
    Electron Device Letters, IEEE
  • Publisher
    ieee
  • ISSN
    0741-3106
  • Type

    jour

  • DOI
    10.1109/LED.2009.2028248
  • Filename
    5233800