Title :
A 350
W CMOS MSK Transmitter and 400
W OOK Super-Regenerative Receiver for Medical Impl
Author :
Bohorquez, Jose L. ; Chandrakasan, Anantha P. ; Dawson, Joel L.
Author_Institution :
Microsyst. Technol. Labs., Massachusetts Inst. of Technol., Cambridge, MA
fDate :
4/1/2009 12:00:00 AM
Abstract :
Recent advances in the medical field are spurring the need for ultra-low power transceivers for wireless communication with medical implants. To deal with the growing demand for medical telemetry, the FCC commissioned the medical implant communications services (MICS) standard in 1999 in the 402-405 MHz band. This paper presents a 350 muW FSK/MSK direct modulation transmitter and a 400 muW OOK super-regenerative receiver (SRR) specifically optimized for medical implant communications. The transceiver is implemented in 90 nm CMOS and digitally tunes 24 MHz in frequency steps smaller than 2 kHz. The transmitter meets MICS mask specifications with data rates up to 120 kb/s consuming only 2.9 nJ/bit; the receiver has a sensitivity better than -99 dBm with a data rate of 40 kb/s or -93 dBm with a data rate of 120 kb/s consuming 3.3 nJ/bit. A frequency correction loop incorporating the base-station is prototyped to eliminate the need for a frequency synthesizer in the implant while still achieving frequency stability of less than 3 ppm.
Keywords :
CMOS integrated circuits; biomedical telemetry; frequency synthesizers; minimum shift keying; radio transmitters; transceivers; CMOS MSK transmitter; MICS mask specifications; OOK super-regenerative receiver; frequency 402 MHz to 405 MHz; frequency stability; frequency synthesizer; medical implant communications; medical telemetry; ultra-low power transceivers; wireless communication; Biomedical imaging; FCC; Frequency shift keying; Frequency synthesizers; Implants; Microwave integrated circuits; Telemetry; Transceivers; Transmitters; Wireless communication; Capacitor predistortion; MICS; digitally-controlled oscillator; direct-modulation transmitter; frequency-control loop; frequency-shift keying; low power; medical implants; on-off keying; super-regenerative receiver;
Journal_Title :
Solid-State Circuits, IEEE Journal of
DOI :
10.1109/JSSC.2009.2014728