• DocumentCode
    1616033
  • Title

    0.5 μm GaAs MESFET 4.2 mW ultra-low power decision circuit for optical communications with 0.1 μm CMOS and HBT implementation

  • Author

    Lee, Mike Myung-Ok ; Hyo-Dong Lee ; Jung, Jincheol

  • Author_Institution
    Fac. of Eng., Dongshin Univ., Kwangju, South Korea
  • Volume
    2
  • fYear
    1997
  • Firstpage
    457
  • Abstract
    The design specifications considering low-power and high-speed are presented. Several decision circuits for an optical communication receiver system, are designed and simulated using AIM-SPICE circuit simulation tools, based on extracted process parameter using an in-house characterization and modeling tool named CMLEE. Several circuits using 2×4 emitter-area HBT, 0.5 μm MESFET and compatible 0.1 μm CMOS technology are designed and simulated for the output node waveform and power consumption. All the waveform simulations showed good performance at 10 Gbps. It is observed that the 0.1 μm CMOS circuits of current mainstream electronic systems shows more than a 10 GHz operation, opening an opportunity for high frequency as long as deep sub-μm technology compromises maturity and cost in reality. In terms of power consumption, the sub-half 0.5 μm GaAs MESFET at 4.2 mW is the best choice for the same 10 GHz speed performance, compared to 60 mW by the 0.1 μm CMOS circuit
  • Keywords
    CMOS integrated circuits; III-V semiconductors; SPICE; Schottky gate field effect transistors; circuit CAD; circuit analysis computing; decision circuits; gallium arsenide; heterojunction bipolar transistors; optical receivers; 0.1 micron; 0.5 micron; 10 GHz; 10 Gbit/s; 4.2 mW; 60 mW; AIM-SPICE circuit simulation tools; CMLEE; CMOS technology; GaAs; HBT; III V semiconductor; MESFET; deep sub-μm technology; design specifications; electronic systems; emitter-area; high frequency; high-speed; low-power consumption; optical communication receiver; optical communications; output node waveform; performance; ultra-low power decision circuit; waveform simulations; CMOS technology; Circuit simulation; Energy consumption; Gallium arsenide; MESFET circuits; Optical design; Optical fiber communication; Optical receivers; Power system modeling; Semiconductor device modeling;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    TENCON '97. IEEE Region 10 Annual Conference. Speech and Image Technologies for Computing and Telecommunications., Proceedings of IEEE
  • Conference_Location
    Brisbane, Qld.
  • Print_ISBN
    0-7803-4365-4
  • Type

    conf

  • DOI
    10.1109/TENCON.1997.648243
  • Filename
    648243