DocumentCode
1486807
Title
A Sub-100
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
Link To Document