DocumentCode
1035805
Title
Compact Modeling of MOSFET Wearout Mechanisms for Circuit-Reliability Simulation
Author
Li, Xiaojun ; Qin, Jin ; Bernstein, Joseph B.
Author_Institution
Intel Corp., Folsom
Volume
8
Issue
1
fYear
2008
fDate
3/1/2008 12:00:00 AM
Firstpage
98
Lastpage
121
Abstract
The integration density of state-of-the-art electronic systems is limited by the reliability of the manufactured integrated circuits at a desired circuit density. Design rules, operating voltages, frequencies, and temperatures are precisely chosen to ensure correct product functional operation over its intended lifetime. Thus, in order to obtain the overall performance and functionality bounded by various design and manufacturing constraints, the integrated circuit reliability must be modeled and analyzed at the very beginning of design stages. This paper reviews some of the most important intrinsic wearout mechanisms of MOSFETs (including hot-carrier injection, time-dependent dielectric breakdown, and negative bias temperature instability) and introduces new accelerated-lifetime and SPICE compact models of these wearout mechanisms. Based on these circuit-aging models, a new SPICE reliability simulation approach is proposed and demonstrated with a simplified SRAM design on a commercial 90-nm technology to help designers understand device-failure behaviors, predict circuit reliability, and improve product robustness.
Keywords
MOS integrated circuits; electric breakdown; integrated circuit reliability; MOSFET wearout mechanisms; circuit-aging models; circuit-reliability simulation; compact modeling; hot-carrier injection; manufactured integrated circuits reliability; manufacturing constraints; negative bias temperature instability; time-dependent dielectric breakdown; Circuit reliability simulation; Not provided; SPICE; device modeling; hot-carrier (HCI); negative bias temperature instability (NBTI); reliability modeling; time-dependent dielectric breakdown (TDDB); wearout mechanisms;
fLanguage
English
Journal_Title
Device and Materials Reliability, IEEE Transactions on
Publisher
ieee
ISSN
1530-4388
Type
jour
DOI
10.1109/TDMR.2008.915629
Filename
4431867
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