Title :
A 90-nm CMOS high efficiency on chip DC-DC converter for ultra-low power low cost applications
Author :
Samir, Akhrouf ; Kussener, Edith ; Rahajandraibe, W. ; Barthelemy, Herve ; Girardeau, Laurent
Author_Institution :
STMicroelectron., Rousset, France
Abstract :
It is widely recognized that adaptive control of the power supply is one of the most effective variables to achieve energy-efficient computation. Most on-chip dc-dc conversion systems have relied on buck converters with off-chip LC filters. In this paper, we describe the development of fully integrated on-chip dc-dc down conversion system that combines switched-capacitor voltage divider and linear regulator. The converter was designed with 90-nm standard CMOS process. No external components are required. With an input voltage of 2.6V, the converter achieves step-down voltage conversion with an output voltage equal to 1.1V and a maximum efficiency of 63%. The converter employs a dynamic control loop to automatically adjust the switching frequency with the load current variation. Its switching frequency varies from 2MHz to 38MHz while load current is between 1mA and 16mA respectively. The use of switched-capacitor supply offers better efficiency than what is achievable with linear regulator alone.
Keywords :
CMOS integrated circuits; DC-DC power convertors; adaptive control; filters; switched capacitor networks; voltage dividers; CMOS high efficiency on chip DC-DC converter; buck converters; current 1 mA to 16 mA; dynamic control loop; efficiency 63 percent; energy-efficient computation; frequency 2 MHz to 38 MHz; fully integrated on-chip dc-dc down conversion system; linear regulator; load current variation; off-chip LC filters; power supply adaptive control; size 90 nm; step-down voltage conversion; switched-capacitor supply; switched-capacitor voltage divider; ultralow power low cost applications; voltage 1.1 V; voltage 2.6 V; Capacitors; Clocks; Regulators; Switches; System-on-chip; Voltage control; DC-to-DC converter; high efficiency; low power; on chip; regulator;
Conference_Titel :
Faible Tension Faible Consommation (FTFC), 2013 IEEE
Conference_Location :
Paris
Print_ISBN :
978-1-4673-6105-7
DOI :
10.1109/FTFC.2013.6577765