• DocumentCode
    983160
  • Title

    UV Illumination Technique for Leakage Current Reduction in a-Si:H Thin-Film Transistors

  • Author

    Li, Yiming ; Hwang, Chih-Hong ; Chen, Chung-Le ; Yan, Shuoting ; Lou, Jen-Chung

  • Author_Institution
    Dept. of Commun. Eng., Nat. Chiao Tung Univ., Hsinchu
  • Volume
    55
  • Issue
    11
  • fYear
    2008
  • Firstpage
    3314
  • Lastpage
    3318
  • Abstract
    The high photoconductivity of hydrogenated amorphous silicon thin-film transistors (a-Si:H TFTs) is responsible for the leakage current under illumination-particularly in projectors and displays with high-intensity backlight illumination. This work investigates a leakage current reduction approach, in which the inverted staggered a-Si:H TFTs are exposed to the ultraviolet (UV) laser. An 85% reduction in the leakage current in a-Si:H TFTs is experimentally observed. The general SPICE model (such as the RPI model) lacks the proper term to capture the photo-induced phenomena; therefore, the physical mechanisms that are associated with the illumination of a-Si:H TFTs under UV, including the energy state and the density of traps, are analyzed using device simulation. The I-V characteristics of the inverted staggered a-Si:H TFTs under different magnitudes of UV exposure are calibrated with experimentally measured data. The preliminary results show the change of trap states in amorphous silicon film and a shift of the Fermi level with UV illumination. UV illumination may induce traps in the active layer of the device and thereby reduce the OFF-state leakage current.
  • Keywords
    Fermi level; SPICE; amorphous semiconductors; elemental semiconductors; energy states; hydrogen; laser beam effects; leakage currents; photoconducting devices; photoconductivity; silicon; thin film transistors; ultraviolet radiation effects; Fermi level; RPI model; SPICE model; Si:H; UV laser illumination; device simulation; energy state; high-intensity backlight illumination; hydrogenated amorphous silicon thin-film transistors; leakage current; photoconductivity; trap change states; trap density; Amorphous silicon; Displays; Economic indicators; Laser modes; Laser theory; Leakage current; Lighting; Photoconductivity; SPICE; Thin film transistors; Amorphous silicon thin-film transistors (a-Si:H TFTs); band-to-band tunneling; device simulation and characterization; leakage current; trap-assisted tunneling; ultraviolet (UV) illumination;
  • fLanguage
    English
  • Journal_Title
    Electron Devices, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9383
  • Type

    jour

  • DOI
    10.1109/TED.2008.2005133
  • Filename
    4668603