• DocumentCode
    889568
  • Title

    High-Density Electron-Beam-Fabricated CCD Memory Components

  • Author

    Hamilton, James M. ; Nash, J. Greg ; Henderson, Richard C. ; Chen, John Y. ; Leong, Douglas M. ; Cuk, Nevanka

  • Volume
    15
  • Issue
    4
  • fYear
    1980
  • fDate
    8/1/1980 12:00:00 AM
  • Firstpage
    720
  • Lastpage
    730
  • Abstract
    We have designed, fabricated, and tested CCD circuit components and arrays suitable for use in making high-density (>256-kbit) memory chips. A novel multiplex/demultiplex circuit allows smaller parallel-column widths than those in SPS arrays made using the same design rules, yet exacts no penalty in terms of extra mask levels or clocking requirements. A detector/refresher circuit which uses a novel charge comparison principle with feedback provides 5-mV sensitivity at 1-MHz. CCD array structures have been fabricated with transfer-pair electrode sizes of 4.8 μm and channel widths of 5.4 μm that exhibit a charge-transfer efficiency of 0.9996 with no fat zero. This cell size would enable one to build a 256-kbit memory on a chip less than 40 000 mil2. A combined electron-beam and photolithographic process has been developed to make high-resolution double-level polysilicon CCD\´s. A "universal" chip was used to interface the electron-beam and optical patterns. The combined lithography process reduces the throughput requirements for the electron-beam machines. It is also flexible so that lithography steps can be eliminated if only electron-beam or only optically defined devices are desired. We found that when process overetch, lithography size, and alignment do not improve proportionally, topological constraints arise preventing simple two-dimensional scaling. The design of a serial-parallel-serial (SPS) CCD is an example of this constraint.
  • Keywords
    Charge-coupled device circuits; Electron beam lithography; Integrated circuit technology; Integrated memory circuits; Photolithography; Charge coupled devices; Circuit testing; Clocks; Detectors; Electrodes; Feedback circuits; Lithography; Optical devices; Optical feedback; Optical sensors;
  • fLanguage
    English
  • Journal_Title
    Solid-State Circuits, IEEE Journal of
  • Publisher
    ieee
  • ISSN
    0018-9200
  • Type

    jour

  • DOI
    10.1109/JSSC.1980.1051460
  • Filename
    1051460