• DocumentCode
    895956
  • Title

    Low-cost BiCMOS variable gain LNA at Ku-band with ultra-low power consumption

  • Author

    Ellinger, Frank ; Jäckel, Heinz

  • Author_Institution
    Switzerland & with the IBM/ETH Center for Adv. Silicon Electron., Eidgenossische Tech. Hochschule, Ruschlikon, Switzerland
  • Volume
    52
  • Issue
    2
  • fYear
    2004
  • Firstpage
    702
  • Lastpage
    708
  • Abstract
    A low-noise amplifier (LNA) at Ku-band with variable gain for adaptive antenna combining is presented. The compact MMIC is optimized for low-power-consuming wireless local area network applications and is fabricated using commercial 0.25-μm bipolar complementary metal-oxide semiconductor technology. At 16 GHz, a supply voltage of 1.5 V and a current consumption of only 1.5 mA, maximum gain of 14.5 dB, noise figure of 3.8 dB, and third-order intercept point at the output of 1 dBm are measured. At a supply voltage of only 1 V and a supply current of 0.9 mA, a gain of 11 dB was achieved, yielding a gain per supply power figure-of-merit of 12.2 dB/mW, which, to the knowledge of the authors, is the highest reported to date for Ku-band LNAs, independent of the technology used. The characteristics of different bias methods for amplitude control of the cascode circuit are elaborately discussed. A bias-control method is proposed to significantly decrease the transmission phase variations versus gain.
  • Keywords
    BiCMOS analogue integrated circuits; MMIC amplifiers; adaptive antenna arrays; circuit simulation; integrated circuit design; integrated circuit measurement; integrated circuit modelling; integrated circuit noise; low-power electronics; wireless LAN; 0.25 micron; 0.9 mA; 1 V; 1.5 V; 1.5 mA; 11 dB; 12.5 to 18 GHz; 14.5 dB; 16 GHz; 3.8 dB; Ku-band low-cost BiCMOS variable gain LNA; WLAN; adaptive antenna combining; bias methods; bias-control method; bipolar complementary metal-oxide semiconductor technology; cascode circuit amplitude control; current consumption; gain per supply power figure-of-merit; maximum gain; noise figure; optimized MMIC; supply current; supply voltage; third-order intercept point; transmission phase variations; ultra-low power consumption; variable gain low-noise amplifier; wireless local area network applications; Adaptive arrays; BiCMOS integrated circuits; Energy consumption; Gain; Low-noise amplifiers; MMICs; MOS devices; Noise figure; Voltage; Wireless LAN;
  • fLanguage
    English
  • Journal_Title
    Microwave Theory and Techniques, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9480
  • Type

    jour

  • DOI
    10.1109/TMTT.2003.822020
  • Filename
    1266899