Title :
A Low-Power Asynchronous Step-Down DC–DC Converter for Implantable Devices
Author :
Al-Terkawi Hasib, O. ; Sawan, M. ; Savaria, Y.
Author_Institution :
Dept. of Electr. Eng., Ecole Polytech. de Montreal, Montreal, QC, Canada
fDate :
6/1/2011 12:00:00 AM
Abstract :
In this paper, we present a fully integrated asynchronous step-down switched capacitor dc-dc conversion structure suitable for supporting ultra-low-power circuits commonly found in biomedical implants. The proposed converter uses a fully digital asynchronous state machine as the heart of the control circuitry to generate the drive signals. To minimize the switching losses, the asynchronous controller scales the switching frequency of the drive signals according to the loading conditions. It also turns on additional parallel switches when needed and has a backup synchronous drive mode. This circuit regulates load voltages from 300 mV to 1.1 V derived from a 1.2-V input voltage. A total of 350 pF on-chip capacitance was implemented to support a maximum of 230-μ W load power, while providing efficiency up to 80%. The circuit validating the proposed concepts was fabricated in 0.13- μm complementary metal-oxide semiconductor technology. Experimental test results confirm the expected functionality and performance of the proposed circuit.
Keywords :
CMOS integrated circuits; DC-DC power convertors; asynchronous circuits; finite state machines; prosthetics; switching convertors; asynchronous controller; backup synchronous drive mode; biomedical implants; capacitance 350 pF; complementary metal-oxide semiconductor technology; fully digital asynchronous state machine; implantable devices; load voltages; loading conditions; low-power asynchronous step-down switched capacitor DC-DC converter; on-chip capacitance; parallel switches; power 230 muW; size 0.13 mum; switching frequency; switching losses; ultralow power circuits; voltage 300 mV to 1.2 V; Capacitors; Converters; Implants; Switches; Topology; Voltage control; Asynchronous control; biomedical devices; dc–dc power converters; dynamic voltage scaling; power management; voltage-scalable switched capacitor;
Journal_Title :
Biomedical Circuits and Systems, IEEE Transactions on
DOI :
10.1109/TBCAS.2010.2103073