• DocumentCode
    709859
  • Title

    Duty cycle shift under static/dynamic aging in 28nm HK-MG technology

  • Author

    Sutaria, Ketul B. ; Pengpeng Ren ; Mohanty, Abinash ; Xixiang Feng ; Runsheng Wang ; Ru Huang ; Yu Cao

  • Author_Institution
    Sch. of ECEE, Arizona State Univ., Tempe, AZ, USA
  • fYear
    2015
  • fDate
    19-23 April 2015
  • Abstract
    Aging due to bias-temperature-instability (BTI) is the dominant cause of functional failure in large scale logic circuits. Power efficient techniques such as clock gating or dynamic voltage scaling exacerbate the problem of asymmetric aging. Traditional analysis on synchronous circuits focuses on shift in data path delay and neglects the change in duty cycle. This work highlights the impact of NBTI and PBTI at advanced technology node on duty cycle shift which is important for edge triggered designs, such as latch based circuits. The contributions of this work are: (1) characterization, decoupling and model calibration of NBTI, PBTI and CHC data at 28nm HK-MG technology; (2) demonstration of monotonic shift of duty cycle under static stress condition and non-monotonic shift under dynamic stress, in which duty cycle converges to 50%. Additional PBTI component at 28nm HK-MG causes faster shift in duty cycle compared to conventional NBTI aging; (3) the sensitivity of long-term aging to the ratio between static and dynamic stress conditions. With PBTI, duty cycle shift is effectively reduced by dynamic stress.
  • Keywords
    ageing; calibration; failure analysis; logic circuits; negative bias temperature instability; stress analysis; CHC data; HK-MG technology; NBTI; PBTI; asymmetric aging; bias-temperature-instability; calibration; clock gating; data path delay; duty cycle shift; dynamic voltage scaling; latch based circuit; logic circuit; power efficient technique; size 28 nm; static stress condition; static-dynamic aging; synchronous circuit; Aging; Data models; Degradation; Integrated circuit modeling; Reliability; Stress; Synchronization; Aging; Duty Cycle Shift; NBTI; PBTI;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Reliability Physics Symposium (IRPS), 2015 IEEE International
  • Conference_Location
    Monterey, CA
  • Type

    conf

  • DOI
    10.1109/IRPS.2015.7112785
  • Filename
    7112785