• DocumentCode
    987018
  • Title

    High-bit-rate low-power decision circuit using InP-InGaAs HBT technology

  • Author

    Ishii, Kiyoshi ; Nosaka, Hideyuki ; Sano, Kimikazu ; Murata, Koichi ; Ida, Minoru ; Kurishima, Kenji ; Hirata, Michihiro ; Shibata, Tsugumichi ; Enoki, Takatomo

  • Author_Institution
    NTT Photonics Labs., NTT Corp., Kanagawa, Japan
  • Volume
    40
  • Issue
    7
  • fYear
    2005
  • fDate
    7/1/2005 12:00:00 AM
  • Firstpage
    1583
  • Lastpage
    1588
  • Abstract
    We have successfully designed and fabricated a high-bit-rate low-power decision circuit using InP-InGaAs heterojunction bipolar transistors (HBTs). Its main design feature is the use of a novel master-slave D-type flip-flop (MS-DFF) as the decision circuit core to boost the operating speed. We achieved error-free operation at a data rate of up to 60 Gb/s using an undoped-emitter InP-InGaAs HBT with a cutoff frequency fT of approximately 150 GHz and a maximum oscillation frequency fmax of approximately 200 GHz. Our decision circuit operates approximately 15% faster than one with a conventional MS-DFF core. We also achieved 90-Gb/s operation with low power consumption of 0.5 W using an InP-InGaAs DHBT exhibiting fT and fmax of 232 and 360 GHz, respectively. These results demonstrate that InP-based HBTs and our novel MS-DFF are attractive for making ultrahigh-performance ICs for future optical communications systems operating at bit rates of 100 Gb/s or more.
  • Keywords
    decision circuits; flip-flops; gallium arsenide; heterojunction bipolar transistors; indium compounds; logic circuits; low-power electronics; optical communication; phosphorus compounds; 0.5 W; 100 Gbit/s; 232 GHz; 360 GHz; 60 Gbit/s; HBT technology; InP-InGaAs; error-free operation; heterojunction bipolar transistors; low-power decision circuit; master-slave D-type flip-flop; operating speed; optical communications systems; Bit rate; Circuits; Cutoff frequency; DH-HEMTs; Energy consumption; Error-free operation; Flip-flops; Heterojunction bipolar transistors; Master-slave; Optical fiber communication; Decision circuit; HBT; InP; optical communications;
  • fLanguage
    English
  • Journal_Title
    Solid-State Circuits, IEEE Journal of
  • Publisher
    ieee
  • ISSN
    0018-9200
  • Type

    jour

  • DOI
    10.1109/JSSC.2005.847521
  • Filename
    1459004