• DocumentCode
    2783950
  • Title

    Data Retention Characterization of Phase-Change Memory Arrays

  • Author

    Gleixner, B. ; Pirovano, A. ; Sarkar, J. ; Ottogalli, F. ; Tortorelli, E. ; Tosi, M. ; Bez, R.

  • Author_Institution
    Intel Corp., Santa Clara, CA
  • fYear
    2007
  • fDate
    15-19 April 2007
  • Firstpage
    542
  • Lastpage
    546
  • Abstract
    To support reliable large array products, phase-change memory (PCM) technologies must be able to retain data over the product´s lifetime with very low defect rates. PCM stores data in a chalcogenide material which can be placed in either a high resistance amorphous phase or a low resistance crystalline phase. Data retention is limited by resistance loss of the amorphous phase of the material, a process that is controlled by the kinetics of crystallization. This paper presents array-level data retention results on a statistical distribution of PCM cells that shows the failure rate with temperature to be well-described by the Arrhenius equation and distributed lognormally with time. For typical cells, the retention capability exceeds 100,000 hours at 85degC and is capable of meeting product requirements. In non-optimized devices, however, we observe cells that fail earlier than the lognormal distribution would predict. The failure distribution of these cells is Weibull with time but shows similar temperature acceleration to the intrinsic distribution, indicative of a defect in the amorphous chalcogenide. Characterization of these cells shows that their retention behavior is erratic. Furthermore, it is not significantly changed by write cycling. We then show that this defect distribution can be suppressed by process architecture or write algorithm optimization. Retention data collected on cells at both the 180nm and 90nm lithography nodes show that the intrinsic behavior is maintained with process scaling
  • Keywords
    Weibull distribution; log normal distribution; phase change materials; random-access storage; 180 nm; 85 C; 90 nm; Arrhenius equation; PCM cells; Weibull distribution; amorphous chalcogenide; data retention; failure distribution; failure rate; lithography nodes; lognormal distribution; nonoptimized devices; phase-change memory arrays; statistical distribution; Amorphous materials; Amorphous semiconductors; Crystalline materials; Crystallization; Kinetic theory; Phase change materials; Phase change memory; Phased arrays; Process control; Temperature distribution; Phase Change Memory; chalcogenide; data retention;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Reliability physics symposium, 2007. proceedings. 45th annual. ieee international
  • Conference_Location
    Phoenix, AZ
  • Print_ISBN
    1-4244-0919-5
  • Electronic_ISBN
    1-4244-0919-5
  • Type

    conf

  • DOI
    10.1109/RELPHY.2007.369948
  • Filename
    4227689