DocumentCode :
1307684
Title :
Wireless Front-End With Power Management for an Implantable Cardiac Microstimulator
Author :
Shuenn-Yuh Lee ; Cheng-Han Hsieh ; Chung-Min Yang
Author_Institution :
Electr. Eng. Dept., Nat. Chung Cheng Univ., Chiayi, Taiwan
Volume :
6
Issue :
1
fYear :
2012
Firstpage :
28
Lastpage :
38
Abstract :
Inductive coupling is presented with the help of a high-efficiency Class-E power amplifier for an implantable cardiac microstimulator. The external coil inductively transmits power and data with a carrier frequency of 256 kHz into the internal coil of electronic devices inside the body. The detected cardiac signal is fed back to the external device with the same pair of coils to save on space in the telemetry device. To maintain the power reliability of the microstimulator for long-term use, two small rechargeable batteries are employed to supply voltage to the internal circuits. The power management unit, which includes radio frequency front-end circuits with battery charging and detection functions, is used for the supply control. For cardiac stimulation, a high-efficiency charge pump is also proposed in the present paper to generate a stimulated voltage of 3.2 V under a 1 V supply voltage. A phase-locked-loop (PLL)-based phase shift keying demodulator is implemented to efficiently extract the data and clock from an inductive AC signal. The circuits, with an area of 0.45 mm2, are implemented in a TSMC 0.35 μm 2P4M standard CMOS process. Measurement results reveal that power can be extracted from the inductive coupling and stored in rechargeable batteries, which are controlled by the power management unit, when one of the batteries is drained. Moreover, the data and clock can be precisely recovered from the coil coupling, and a stimulated voltage of 3.2 V can be readily generated by the proposed charge-pump circuits to stimulate cardiac tissues.
Keywords :
CMOS integrated circuits; bioelectric phenomena; biomedical equipment; cardiology; demodulators; phase locked loops; prosthetics; reliability; secondary cells; TSMC 0.35 μm 2P4M standard CMOS process; battery charging; cardiac signal; cardiac stimulation; cardiac tissues; charge-pump circuit; coil coupling; electronic device internal coil; frequency 256 kHz; high-efficiency charge pump; high-efficiency class-E power amplifier; implantable cardiac microstimulator; inductive AC signal; inductive coupling; internal circuit; phase-locked-loop-based phase shift keying demodulator; power management unit; power reliability; radio frequency front-end circuit; rechargeable battery; size 0.35 mum; telemetry device; voltage 1 V to 3.2 V; wireless front-end; Batteries; Coils; Couplings; Detectors; Phase shift keying; Voltage control; Wireless communication; Charge pump; PSK demodulator; inductive coupling; microstimulator; power management; rectifier; regulator; Algorithms; Amplifiers, Electronic; Electrodes, Implanted; Electronics, Medical; Heart; Humans; Pacemaker, Artificial; Reproducibility of Results; Signal Processing, Computer-Assisted; Telemetry; Wireless Technology;
fLanguage :
English
Journal_Title :
Biomedical Circuits and Systems, IEEE Transactions on
Publisher :
ieee
ISSN :
1932-4545
Type :
jour
DOI :
10.1109/TBCAS.2011.2162409
Filename :
5999736
Link To Document :
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