Title :
Design and Analysis of Dual-Mode Digital-Control Step-Up Switched-Capacitor Power Converter With Pulse-Skipping and Numerically Controlled Oscillator-Based Frequency Modulation
Author :
Hing-Kit Kwan ; Ng, David C. W. ; So, Victor W. K.
Author_Institution :
Portable AMS Designs, Hong Kong Appl. Sci. & Technol. Res. Inst., Hong Kong, China
Abstract :
This paper presents a 3 V-to-5 V integrated dual-mode digital-control step-up switched-capacitor (SC) power converter. The feedback control circuit is equipped with a low-power analog-to-digital converter which monitors and feeds the output voltage to a digital controller. With light loading, the control loop operates in a pulse-skipping mode. With heavy loading, the control loop operates in a frequency modulation mode (FMM) based on a numerically controlled oscillator whose switching frequency varies from 31.25 kHz to 1 MHz. The design is fabricated in a 0.5- μm digital CMOS process. With multiplierless implementation, the controller requires a gate count of less than 300. The whole design occupies a total active area of 0.23 mm2. From silicon measurement, with a 330-nF external flying capacitor, the design delivers a regulated 5 V output with an output current up to 25 mA from a 3 V supply, delivering an output power greater than 100 mW. The load regulation is measured to be 0.14%. A remarkable efficiency of 80% or above on average under various loading conditions is achieved. Dynamic characteristic and stability analysis of the SC converter in the FMM are presented. Comparisons with existing designs demonstrate the excellence of the proposed design.
Keywords :
CMOS digital integrated circuits; analogue-digital conversion; digital control; feedback; numerical control; oscillators; power convertors; switched capacitor networks; switching convertors; FMM; SC converter; capacitance 330 nF; control loop; digital CMOS process; digital controller; dual-mode digital-control step-up switched-capacitor power converter; dynamic characteristic; efficiency 80 percent; feedback control circuit; frequency 31.25 kHz to 1 MHz; frequency modulation mode; integrated dual-mode digital-control step-up SC power converter; low-power analog-to-digital converter; numerically-controlled oscillator-based frequency modulation; pulse skipping mode; silicon measurement; size 0.5 mum; stability analysis; switching frequency; voltage 3 V to 5 V; Capacitors; Clocks; Loading; Switches; Switching frequency; Voltage control; Charge pump; digital feedback control; switched-capacitor power converter;
Journal_Title :
Very Large Scale Integration (VLSI) Systems, IEEE Transactions on
DOI :
10.1109/TVLSI.2012.2227150