• DocumentCode
    2013576
  • Title

    A Dynamic Optically Reconfigurable Gate Array with a Silver-Halide Holographic Memory

  • Author

    Seto, Daisaku ; Watanabe, Minoru

  • Author_Institution
    Electr. & Electron. Eng., Shizuoka Univ., Shizuoka
  • fYear
    2008
  • fDate
    7-9 April 2008
  • Firstpage
    511
  • Lastpage
    514
  • Abstract
    To increase gate density, a dynamic optically reconfigurable gate array (DORGA) architecture has been proposed that uses the junction capacitance of photodiodes as dynamic memory, thereby obviating the static configuration memory. To date, estimation of the DORGA architecture using a liquid crystal holographic memory has been conducted, thereby demonstrating its availability. However, because the resolution of the liquid crystal holographic memory is very low and because the storable configuration contexts are numerically limited to four,that estimation cannot be considered a practical experiment. Therefore, this paper presents a practical demonstration of the DORGA architecture using a silver-halide holographic memory that can store over 3,000 configuration contexts. The DORGA architecture performance, in particular the reconfiguration context retention time, was analyzed experimentally. The advantages of this architecture are discussed in relation to the results of this study.
  • Keywords
    holographic optical elements; logic arrays; photodiodes; dynamic optically reconfigurable gate array; junction capacitance; liquid crystal holographic memory; photodiodes; silver-halide holographic memory; Capacitance; Field programmable gate arrays; High speed optical techniques; Holographic optical components; Holography; Liquid crystals; Optical arrays; Optical devices; Photodiodes; Very large scale integration; Field Programmable Gate Arrays; Optically Reconfigurable Gate Arrays;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Symposium on VLSI, 2008. ISVLSI '08. IEEE Computer Society Annual
  • Conference_Location
    Montpellier
  • Print_ISBN
    978-0-7695-3291-2
  • Electronic_ISBN
    978-0-7695-3170-0
  • Type

    conf

  • DOI
    10.1109/ISVLSI.2008.94
  • Filename
    4556853