DocumentCode
1494698
Title
Characterization and modeling of edge direct tunneling (EDT) leakage in ultrathin gate oxide MOSFETs
Author
Yang, K.N. ; Huang, H.T. ; Chen, M.J. ; Lin, Y.M. ; Yu, M.C. ; Jang, S.M. ; Yu, Douglas C H ; Liang, M.S.
Author_Institution
Inst. of Electron., Nat. Chiao Tung Univ., Hsinchu, Taiwan
Volume
48
Issue
6
fYear
2001
fDate
6/1/2001 12:00:00 AM
Firstpage
1159
Lastpage
1164
Abstract
This paper examines the edge direct tunneling (EDT) of electron from n+ polysilicon to underlying n-type drain extension in off-state n-channel MOSFETs having ultrathin gate oxide thicknesses (1.4-2.4 nm). It is found that for thinner oxide thicknesses, electron EDT is more pronounced over the conventional gate-induced-drain-leakage (GIDL), bulk band-to-band tunneling (BTBT) and gate-to-substrate tunneling, and as a result, the induced gate and drain leakage is better measured per unit gate width. A physical model is for the first time derived for the oxide field EOX at the gate edge by accounting for electron subband in the quantized accumulation polysilicon surface. This model relates EOX to the gate-to-drain voltage, oxide thickness, and doping concentration of drain extension. Once fox is known, an existing DT model readily reproduces EDT I-V consistently and the tunneling path size extracted falls adequately within the gate-to-drain overlap region. The ultimate oxide thickness limit due to EDT is projected as well
Keywords
MOSFET; doping profiles; elemental semiconductors; leakage currents; semiconductor device models; silicon; tunnelling; 1.4 to 2.4 nm; Si; doping concentration; edge direct tunneling leakage; electron subband; gate-to-drain overlap region; gate-to-drain voltage; n-type drain extension; off-state n-channel MOSFETs; physical model; quantized accumulation polysilicon surface; tunneling path size; ultrathin gate oxide MOSFETs; Doping; Electrons; Fitting; MOSFETs; Measurement units; Semiconductor process modeling; Subthreshold current; Thickness measurement; Tunneling; Voltage;
fLanguage
English
Journal_Title
Electron Devices, IEEE Transactions on
Publisher
ieee
ISSN
0018-9383
Type
jour
DOI
10.1109/16.925242
Filename
925242
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