• DocumentCode
    1533527
  • Title

    Computational Study on the Performance of Si Nanowire pMOSFETs Based on the k \\cdot p Method

  • Author

    Shin, Mincheol ; Lee, Sunhee ; Klimeck, Gerhard

  • Author_Institution
    Dept. of Electr. Eng., Korea Adv. Inst. of Sci. & Technol., Daejeon, South Korea
  • Volume
    57
  • Issue
    9
  • fYear
    2010
  • Firstpage
    2274
  • Lastpage
    2283
  • Abstract
    Full-quantum device simulations on p-type Si nanowire field-effect transistors based on the k · p method, using the k ·p parameters tuned against the sp3s* tight-binding method, are carried out. Full transport calculations from both methods agree reasonably well, and the spin-orbit coupling effect is found to be negligible in the final current-voltage characteristics. Use of the highly efficient simulator based on the 3 × 3 k ·p Hamiltonian is therefore justified, and simulations of nanowire devices with cross sections from 3 × 3 nm2 up to 10 × 10 nm2 are performed. The subthreshold characteristics, threshold voltages, and ON-state currents for the three respective transport directions of the [100], [110], and [111] directions are examined. The device characteristics for the [110] and [111] directions are quite similar in every respect, and the [100] direction has the advantage with regard to the subthreshold behavior when the channel length is aggressively scaled down. The on-current magnitudes for the three respective orientations do not differ much, although the on-current in the [100] direction is a little smaller, compared with that in the other two directions when the channel width becomes smaller. An uncoupled mode space approach has been used to determine the contributions from individual heavy and light hole subbands, enabling an insightful analysis of the device characteristics.
  • Keywords
    MOSFET; elemental semiconductors; silicon; ON-current magnitudes; ON-state currents; Si; current-voltage characteristics; full-quantum device simulations; k·p method; nanowire devices; nanowire pMOSFET; spin-orbit coupling effect; subthreshold characteristics; threshold voltages; tight-binding method; uncoupled mode space approach; Computational modeling; Computer networks; FETs; MOSFETs; Materials science and technology; Nanoelectronics; Nanoscale devices; Nanotechnology; Quantum computing; Threshold voltage; $k cdot p$; Hole; MOSFET; PMOS; nanowire; non-equilibrium Green\´s function; simulation; spin-orbit coupling; tight-binding; transistors; transport; valence band;
  • fLanguage
    English
  • Journal_Title
    Electron Devices, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9383
  • Type

    jour

  • DOI
    10.1109/TED.2010.2052400
  • Filename
    5508390