• DocumentCode
    1650411
  • Title

    Study of sub-30nm thin film transistor (TFT) charge-trapping (CT) devices for 3D NAND flash application

  • Author

    Tzu-Hsuan Hsu ; Lue, Hang-Ting ; Chih-Chang Hsieh ; Lai, Erh-Kun ; Lu, Chi-Pin ; Hong, Shih-Ping ; Wu, Ming-Tsung ; Hsu, F.H. ; Lien, N.Z. ; Hsieh, Jung-Yu ; Yang, Ling-Wu ; Yang, Tahone ; Chen, Kuang-Chao ; Hsieh, Kuang-Yeu ; Liu, Rich ; Lu, Chih-Yuan

  • Author_Institution
    Emerging Central Lab., Macronix Int. Co., Ltd., Hsinchu, Taiwan
  • fYear
    2009
  • Firstpage
    1
  • Lastpage
    4
  • Abstract
    Sub-30 nm TFT CT NAND flash devices have been extensively studied. Although TFT devices were often believed to have much worse performance than bulk devices, our results show that as devices scale down to sub-30 nm, the DC characteristics (such as read current and subthreshold slope (S.S.)) approach those of the bulk devices because sub-30 nm TFT devices often contain no grain boundaries. The memory window is also larger than the bulk planar devices due to the tri-gate structure that enhances the electric field during programming/erasing. However, a fair percentage of devices contain grain boundaries with poorer S.S. and gm. Interestingly, this only affects the DC characteristics but does not impact the memory window. Furthermore, grain boundaries do not increase the random telegraph noise. The most serious drawback of grain boundaries is the impact on self-boosting window caused by junction leakage. A sub-30 nm TFT BE-SONOS NAND device with MLC capability and good retention is demonstrated.
  • Keywords
    flash memories; grain boundaries; thin film transistors; three-dimensional integrated circuits; 3D NAND flash application; DC characteristics; MLC capability; TFT BE-SONOS NAND device; bulk planar devices; grain boundaries; junction leakage; memory window; self-boosting window; size 30 nm; thin film transistor charge-trapping devices; tri-gate structure; Fabrication; FinFETs; Grain boundaries; Grain size; Reliability engineering; Scalability; Spine; Telegraphy; Thin film transistors; Tunneling;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Electron Devices Meeting (IEDM), 2009 IEEE International
  • Conference_Location
    Baltimore, MD
  • Print_ISBN
    978-1-4244-5639-0
  • Electronic_ISBN
    978-1-4244-5640-6
  • Type

    conf

  • DOI
    10.1109/IEDM.2009.5424262
  • Filename
    5424262