Title :
Batteryless Transceiver Prototype for Medical Implant in 0.18-
m CMOS Technology
Author :
Hsiao-Chin Chen ; Ming-Yu Yen ; Qi-Xiu Wu ; Kuo-Jin Chang ; Li-Ming Wang
Author_Institution :
Electr. Eng., Nat. Taiwan Univ. of Sci. & Technol., Taipei, Taiwan
Abstract :
A medical implant communication service/industrial-scientific-medical band batteryless transceiver prototype for medical implants is proposed and implemented using 0.18-μm CMOS technology. An RF-dc converter is used to accomplish the batteryless function of the transceiver, where the RF powering source is also the reference signal source for the frequency synthesizer. MOS-bipolar devices are employed in receiver analog band circuits as pseudo-resistors. Dissipating 2.19 mW in the receive mode, the transceiver achieves a sensitivity from -68 to -73 dBm for a BER <; 10-3, at a data rate of 20 kb/s. An injection-locked technique is used to reduce the carrier phase noise. Dissipating 3.32 mW in the transmitter mode, the transceiver delivers an output power of -20.9--17 dBm over the band of interest and the carrier presents an in-band phase noise of -108.0--114.3 dBc/Hz at an offset frequency of 300 kHz.
Keywords :
CMOS analogue integrated circuits; MIS devices; biomedical communication; biomedical electronics; biomedical equipment; frequency multipliers; frequency synthesizers; phase noise; prosthetics; prototypes; transceivers; CMOS technology; MOS-bipolar devices; RF-dc converter; batteryless transceiver prototype; carrier phase noise reduction; frequency synthesizer; in-band phase noise; industrial-scientific-medical transceiver; injection-locked technique; medical implant communication service; power 2.19 mW; power 3.32 mW; power dissipation; pseudoresistors; receiver analog band circuits; reference signal source; size 0.18 mum; Implants; Medical diagnostic imaging; Mixers; Phase noise; Radio frequency; Receivers; Transceivers; Batteryless; RF powering; frequency multiplier; industrial–scientific–medical (ISM); injection locked; medical implant; medical implant communication service (MICS); transceiver;
Journal_Title :
Microwave Theory and Techniques, IEEE Transactions on
DOI :
10.1109/TMTT.2013.2292606