• DocumentCode
    1486807
  • Title

    A Sub-100 \\mu W MICS/ISM Band Transmitter Based on Injection-Locking and Frequency Multiplication

  • Author

    Pandey, Jagdish ; Otis, Brian P.

  • Author_Institution
    Qualcomm Inc., San Diego, CA, USA
  • Volume
    46
  • Issue
    5
  • fYear
    2011
  • fDate
    5/1/2011 12:00:00 AM
  • Firstpage
    1049
  • Lastpage
    1058
  • Abstract
    For fully autonomous implantable or body-worn devices running on harvested energy, the peak and average power dissipation of the radio transmitter must be minimized. Additionally, link symmetry must be maintained for peer-to-peer network applications. We propose a highly integrated 90 μW 400 MHz MICS band transmitter with an output power of 20 μW, leading to a 22% global efficiency - the highest reported to date for low-power MICS band systems. We introduce a new transmitter architecture based on cascaded multi-phase injection locking and frequency multiplication to enable low power operation and high global efficiency. Our architecture eliminates slow phase/delay-locked loops for frequency synthesis and uses injection locking to achieve a settling time <;250 ns permitting very aggressive duty cycling of the transmitter to conserve energy. At a data-rate of 200 kbps, the transmitter achieves an energy efficiency of 450 pJ/bit. Our 400 MHz local oscillator topology demonstrates a figure-of-merit of 204 dB while locked to a stable crystal reference. The transmitter occupies 0.04 mm2 of active die area in 130 nm CMOS and is fully integrated except for the crystal and the matching network.
  • Keywords
    frequency multipliers; injection locked oscillators; peer-to-peer computing; radio transmitters; submillimetre wave oscillators; CMOS; MICS-ISM band transmitter; cascaded multiphase injection locking; energy harvesting; frequency 400 MHz; frequency multiplication; frequency synthesis; gain 204 dB; peer-to-peer network application; power 100 muW; power 20 muW; power 90 muW; power dissipation; radio transmitter; size 130 nm; slow phase-delay-locked loop; transmitter architecture; Crystals; Frequency modulation; Microwave integrated circuits; Radio transmitters; Ring oscillators; Injection-locking; efficiency; frequency multiplication; medical implants; ring oscillator; transmitter; ultra-low power;
  • fLanguage
    English
  • Journal_Title
    Solid-State Circuits, IEEE Journal of
  • Publisher
    ieee
  • ISSN
    0018-9200
  • Type

    jour

  • DOI
    10.1109/JSSC.2011.2118030
  • Filename
    5741743