• DocumentCode
    1191574
  • Title

    Negligible Effect of Process-Induced Strain on Intrinsic NBTI Behavior

  • Author

    Shickova, A. ; Kaczer, B. ; Verheyen, P. ; Eneman, G. ; Andres, E. San ; Jurczak, M. ; Absil, P. ; Maes, H. ; Groeseneken, G.

  • Author_Institution
    IMEC, Leuven
  • Volume
    28
  • Issue
    3
  • fYear
    2007
  • fDate
    3/1/2007 12:00:00 AM
  • Firstpage
    242
  • Lastpage
    244
  • Abstract
    In this letter, we investigate the effects of process-induced strain on negative bias temperature instability (NBTI) by performing a comparative study of devices with and without process-induced strain for poly-Si/SiON gate stacks. Devices with SiGe source/drain with different processing sequences and devices with a combination of SiGe S/D and compressive contact etch stop layer (CESL) were studied and compared to reference devices. We decouple the effect of processing conditions in order to ensure a correct interpretation of the results. In contrast with the previous reports, which did not consider the impact of processing conditions, this letter demonstrates that, when initial threshold voltage differences are taken into account and comparisons are performed at the same oxide electric field, no significant degradation of intrinsic NBTI behavior is found for devices with a process-induced strain. In addition, we performed an Arrhenius study showing similar activation energies for devices with and without process-induced strain, suggesting similar degradation mechanism. The results indicate that process-induced strain does not create favorable conditions for additional interface state creation
  • Keywords
    Ge-Si alloys; elemental semiconductors; semiconductor device testing; silicon; silicon compounds; stability; Arrhenius study; Si-SiON; SiGe; contact etch stop layer; interface state; negative bias temperature instability; process-induced strain; threshold voltage; Capacitive sensors; Degradation; Etching; Germanium silicon alloys; Interface states; Negative bias temperature instability; Niobium compounds; Silicon germanium; Threshold voltage; Titanium compounds; Contact etch stop layer (CESL); SiGe; negative bias temperature instability (NBTI); strain;
  • fLanguage
    English
  • Journal_Title
    Electron Device Letters, IEEE
  • Publisher
    ieee
  • ISSN
    0741-3106
  • Type

    jour

  • DOI
    10.1109/LED.2007.891277
  • Filename
    4114583