DocumentCode
1147509
Title
The charging and discharging of high-voltage stress-generated traps in thin silicon oxide
Author
Scott, R.S. ; Dumin, David J.
Author_Institution
Dept. of Electr. & Comput. Eng., Clemson Univ., SC, USA
Volume
43
Issue
1
fYear
1996
fDate
1/1/1996 12:00:00 AM
Firstpage
130
Lastpage
136
Abstract
Excess high-voltage stress-generated low-level leakage currents through 10 nm silicon oxides, previously described as DC currents, are shown to decay to the limit of detection given adequate observation time and, thus, have no discernible component. A physical model is presented which describes the majority of the excess low-level leakage currents in terms of the charging and discharging of traps previously generated by the high voltage stress. Excess low-level leakage currents measured with voltage pulses with polarity opposite to that of the stress voltage are found to contain an additional current component, which is explained by the transient charging and discharging of certain traps inside the oxide. Evidence is presented which suggests that an oxide trap generated by the high-voltage stress can contain either a positive or a negative charge, in addition to being neutral and that the traps are located near both oxide interfaces. All of the trap charging and discharging currents can be explained by the flow of electrons into and out of traps generated by the high voltage stress, without resorting to the flow of holes in the oxide
Keywords
dielectric thin films; electron traps; leakage currents; semiconductor device models; semiconductor-insulator boundaries; silicon compounds; 10 nm; HV stress-generated traps; SiO-Si; low-level leakage currents; oxide interfaces; oxide trap; physical model; transient charging; transient discharging; trap charging; trap discharging; Current measurement; Electric breakdown; Electron traps; Energy states; Leakage current; Semiconductor device reliability; Silicon; Stress measurement; Tunneling; Voltage;
fLanguage
English
Journal_Title
Electron Devices, IEEE Transactions on
Publisher
ieee
ISSN
0018-9383
Type
jour
DOI
10.1109/16.477603
Filename
477603
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