• DocumentCode
    1326445
  • Title

    Fully Integrated Graphene and Carbon Nanotube Interconnects for Gigahertz High-Speed CMOS Electronics

  • Author

    Xiangyu Chen ; Akinwande, Deji ; Kyeong-Jae Lee ; Close, G.F. ; Yasuda, S. ; Paul, B.C. ; Fujita, S. ; Jing Kong ; Wong, H.P.

  • Author_Institution
    Center of Integrated Syst., Stanford Univ., Stanford, CA, USA
  • Volume
    57
  • Issue
    11
  • fYear
    2010
  • Firstpage
    3137
  • Lastpage
    3143
  • Abstract
    Carbon-based nanomaterials such as metallic single-walled carbon nanotubes, multiwalled carbon nanotubes (MWCNTs), and graphene have been considered as some of the most promising candidates for future interconnect technology because of their high current-carrying capacity and conductivity in the nanoscale, and immunity to electromigration, which has been a great challenge for scaling down the traditional copper interconnects. Therefore, studies on the performance and optimization of carbon-based interconnects working in a realistic operational environment are needed in order to advance the technology beyond the exploratory discovery phase. In this paper, we present the first demonstration of graphene interconnects monolithically integrated with industry-standard complementary metal-oxide-semiconductor technology, as well as the first experimental results that compare the performance of high-speed on-chip graphene and MWCNT interconnects. The graphene interconnects operate up to 1.3-GHz frequency, which is a speed that is commensurate with the fastest high-speed processor chips today. A low-swing signaling technique has been applied to improve the speed of carbon interconnects up to 30%.
  • Keywords
    CMOS integrated circuits; carbon nanotubes; graphene; integrated circuit interconnections; nanotechnology; optimisation; carbon nanotube interconnects; carbon-based nanomaterials; fully integrated graphene; gigahertz high-speed CMOS electronics; optimization; CMOS integrated circuits; Carbon nanotubes; Integrated circuit interconnections; Nanomaterials; Wire; Carbon nanotubes; graphene; high speed; interconnect; on-chip;
  • fLanguage
    English
  • Journal_Title
    Electron Devices, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9383
  • Type

    jour

  • DOI
    10.1109/TED.2010.2069562
  • Filename
    5575411