DocumentCode
3381366
Title
A robust reliability methodology for accurately predicting Bias Temperature Instability induced circuit performance degradation in HKMG CMOS
Author
Ioannou, D.P. ; Zhao, K. ; Bansal, A. ; Linder, B. ; Bolam, R. ; Cartier, E. ; Kim, J. -J ; Rao, R. ; Rosa, G. La ; Massey, G. ; Hauser, M. ; Das, K. ; Stathis, J.H. ; Aitken, J. ; Badami, D. ; Mittl, S.
Author_Institution
Semicond. R&D Center, IBM Microelectron., Essex Junction, VT, USA
fYear
2011
fDate
10-14 April 2011
Abstract
A robust reliability characterization / modeling approach for accurately predicting Bias Temperature Instability (BTI) induced circuit performance degradation in High-k Metal Gate (HKMG) CMOS is presented. A series of device level stress experiments employing both AC and DC stress/relax BTI measurements are undertaken to characterize FET´s threshold voltage instability response to a dynamic (inverter type) operation. Results from the AC stress experiments demonstrate that VT instability is frequency independent, an observation that suggests that VT degradation under AC stress can be equivalently measured through the simpler DC stress/relax sequence. An AC BTI model is developed that accurately captures the critical BTI relaxation effect through the DC stress/relax predictions on duty cycle dependence. A Ring Oscillator (RO) circuit is used as a model verification vehicle. Excellent agreement is demonstrated between the frequency degradation measurements obtained with a newly developed Ultra-Fast On-The-Fly (OTF) measurement technique optimized for BTI and the AC BTI model based RO simulations.
Keywords
CMOS integrated circuits; integrated circuit reliability; oscillators; HKMG CMOS; bias temperature instability; circuit performance degradation; high-k metal gate CMOS; ring oscillator circuit; robust reliability; ultra-fast on-the-fly measurement; Degradation; Integrated circuit modeling; Logic gates; Stress; Stress measurement; Time frequency analysis; High-k Metal Gate; NBTI; PBTI; Ring Oscillator;
fLanguage
English
Publisher
ieee
Conference_Titel
Reliability Physics Symposium (IRPS), 2011 IEEE International
Conference_Location
Monterey, CA
ISSN
1541-7026
Print_ISBN
978-1-4244-9113-1
Electronic_ISBN
1541-7026
Type
conf
DOI
10.1109/IRPS.2011.5784559
Filename
5784559
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