Title :
A switched-capacitor based embedded DC-DC buck converter for high power efficiency and high power density
Author :
Maity, Biswajit ; Mandal, Pradip
Author_Institution :
Electron. & Electr. Commun. Eng., IIT Kharagpur, Kharagpur, India
Abstract :
In this paper we propose a controlled cross-coupled switched-capacitor based embedded DC-DC buck converter based on non-overlapping rotational time interleaving switching scheme and frequency control regulation. Proposed converter uses low swing internal signals to control half of the switches. In addition to reduction of switching power loss, the low swing control signals help to use smaller switches and reduce power loss in the converter. The non-overlapping rotational time interleaving switching scheme helps to eliminate shoot through loss during switching transition and improve power efficiency further. In addition, output ripple noise is reduced by this switching scheme. On the other hand frequency control regulation helps to maintain high power efficiency over a wide range of load current. Proposed converter is implemented in 0.18 μm CMOS process to get 1.3 V-1.6 V regulated output from 3.3 V input supply. Peak power efficiency of the converter is 87% while power density is 0.5Watt/mm2 for 79% power efficiency. Output ripple is 8 mV for 25 mA load current for 1.35 V regulated output.
Keywords :
CMOS integrated circuits; DC-DC power convertors; frequency control; switched capacitor networks; CMOS process; controlled cross-coupled switched-capacitor; current 25 mA; efficiency 79 percent; efficiency 87 percent; embedded DC-DC buck converter; frequency control regulation; high power density; high power efficiency; low swing internal signals; nonoverlapping rotational time interleaving switching scheme; output ripple noise; power efficiency; switching power loss reduction; switching transition; voltage 1.3 V to 1.6 V; voltage 1.35 V; voltage 3.3 V; voltage 8 mV; Controlled cross-coupled; frequency control regulation; non-overlapping rotational Time interleaving (NRTI) switching scheme; shoot through current;
Conference_Titel :
TENCON 2010 - 2010 IEEE Region 10 Conference
Conference_Location :
Fukuoka
Print_ISBN :
978-1-4244-6889-8
DOI :
10.1109/TENCON.2010.5685902