DocumentCode
1140447
Title
On the Weibull shape factor of intrinsic breakdown of dielectric films and its accurate experimental determination. Part II: experimental results and the effects of stress conditions
Author
Wu, Ernest Y. ; Suñé, J. ; Lai, W.
Author_Institution
IBM Microelectron. Div., Essex Junction, VT, USA
Volume
49
Issue
12
fYear
2002
fDate
12/1/2002 12:00:00 AM
Firstpage
2141
Lastpage
2150
Abstract
For pt. I see ibid., vol. 49, no. 12, p.2131 (2002).The Weibull slope measurement techniques described in Part I are used to determine Weibull slopes as function of thickness, voltage, and temperature. The effect of stress temperature and voltage on Weibull slopes is investigated over a wide range of voltage and temperatures for several different oxide thickness values. It was found that Weibull slopes show a strong thickness dependence while Weibull slopes are essentially independent of stress conditions such as voltages and temperature. The implications of the voltage-independent Weibull slope on voltage-dependent acceleration factors are discussed. In addition, the impact of electron injection polarity on Weibull slopes is studied in detail. To further advance understanding, we compare the measured Weibull slopes with different nitrogen incorporation processes under gate injection mode. It was found that for ultrathin oxides below 3 nm to the first order, the Weibull slopes are relatively insensitive to the nitrogen incorporation process for which we investigated. Finally, we discuss the validity of the stress-induced leakage current measurement as an experimental means to measure the critical defect density.
Keywords
MIS devices; Weibull distribution; dielectric thin films; leakage currents; semiconductor device breakdown; semiconductor device measurement; semiconductor device reliability; MOS devices; Weibull shape factor; Weibull slopes; critical defect density; dielectric films; electron injection polarity; gate injection mode; intrinsic breakdown; leakage current measurement; nitrogen incorporation processes; oxide thickness values; stress conditions; temperature; thickness; voltage; voltage-dependent acceleration factors; Current measurement; Density measurement; Dielectric breakdown; Dielectric films; Measurement techniques; Nitrogen; Shape; Stress measurement; Temperature distribution; Voltage;
fLanguage
English
Journal_Title
Electron Devices, IEEE Transactions on
Publisher
ieee
ISSN
0018-9383
Type
jour
DOI
10.1109/TED.2002.805603
Filename
1177978
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