• DocumentCode
    2358611
  • Title

    Performance, reliability, radiation effects, and aging issues in microelectronics - from atomic-scale physics to engineering-level modeling

  • Author

    Pantelides, Sokrates T. ; Tsetseris, L. ; Beck, M.J. ; Rashkeev, S.N. ; Hadjisavvas, G. ; Batyrev, I.G. ; Tuttle, B.R. ; Marinopoulos, A.G. ; Zhou, X.J. ; Fleetwood, D.M. ; Schrimp, R.D.

  • Author_Institution
    Dept. of Phys. & Astron., Vanderbilt Univ., Nashville, TN, USA
  • fYear
    2009
  • fDate
    14-18 Sept. 2009
  • Firstpage
    48
  • Lastpage
    55
  • Abstract
    The development of engineering-level models requires adoption of physical mechanisms that underlie observed phenomena. This paper reviews several cases where parameter-free, atomic-scale, quantum mechanical calculations led to the identification of specific physical mechanisms for phenomena relating to performance, reliability, radiation effects, and aging issues in microelectronics. More specifically, we review recent calculations of electron mobilities that are based on atomic-scale models of the Si-SiO2 interface and elucidate the origin of strain-induced mobility enhancement. We then review extensive work that highlights the role of hydrogen as the primary agent of reliability phenomena such as Negative Bias Temperature Instability (NBTI) and radiation effects, such as Enhanced Low Dose Radiation Sensitivity (ELDRS) and dopant deactivation. Finally, we review atomic-scale simulations of recoils induced by energetic ions in Si and SiO2. The latter provide a natural explanation for single-event gate rupture (SEGR) in terms of defects with energy levels in the SiO2 band gap.
  • Keywords
    ageing; electron mobility; elemental semiconductors; energy gap; integrated circuits; radiation effects; reliability; silicon; silicon compounds; Si-SiO2; aging; atomic-scale physics; atomic-scale simulations; band gap; dopant deactivation; electron mobility; energetic ions; energy levels; engineering-level modeling; enhanced low dose radiation sensitivity; hydrogen; microelectronics; negative bias temperature instability; quantum mechanical calculations; radiation effects; reliability; single-event gate rupture; strain-induced mobility enhancement; Aging; Atomic measurements; Electron mobility; Hydrogen; Microelectronics; Negative bias temperature instability; Physics; Quantum mechanics; Radiation effects; Reliability engineering;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Solid State Device Research Conference, 2009. ESSDERC '09. Proceedings of the European
  • Conference_Location
    Athens
  • ISSN
    1930-8876
  • Print_ISBN
    978-1-4244-4351-2
  • Electronic_ISBN
    1930-8876
  • Type

    conf

  • DOI
    10.1109/ESSDERC.2009.5331355
  • Filename
    5331355