DocumentCode :
1293222
Title :
Active capacitor multiplier in Miller-compensated circuits
Author :
Rincon-Mora, Gabriel A.
Author_Institution :
Power Manage. Product, Texas Instrum. Inc., Dallas, TX, USA
Volume :
35
Issue :
1
fYear :
2000
Firstpage :
26
Lastpage :
32
Abstract :
A technique is presented whereby the compensating capacitor of an internally compensated linear regulator, Miller-compensated two-stage amplifier, is effectively multiplied. Increasing the capacitance with a current-mode multiplier allows the circuit to occupy less silicon area and to more effectively drive capacitive loads. Reducing physical area requirements while producing the same or perhaps better performance is especially useful in complex systems where most, if not all, functions are integrated onto a single integrated circuit. Die area in such systems is a luxury. The increasing demand for mobile battery-operated devices is a driving force toward higher integration. The enhanced Miller-compensation technique developed in this paper helps enable higher integration while being readily applicable to any process technology, be it CMOS, bipolar, or BiCMOS. Furthermore, the technique applies, in general, to amplifier circuits in feedback configuration. Experimentally, the integrated linear regulator (fabricated in a 1-/spl mu/m BiCMOS process technology) proved to be stable for a wide variety of loading conditions: load currents of up to 200 mA, equivalent series resistance of up to 3 /spl Omega/, and load capacitors ranging from 1.5 nF to 20 /spl mu/E The total quiescent current flowing through the regulator was less than 30 /spl mu/A during zero load-current conditions.
Keywords :
BiCMOS analogue integrated circuits; active networks; analogue multipliers; circuit feedback; compensation; voltage regulators; 1 micron; 1.5 nF to 20 muF; BiCMOS process technology; Miller-compensated circuits; active capacitor multiplier; capacitive loads; current-mode multiplier; equivalent series resistance; feedback configuration; internally compensated linear regulator; load capacitors; load currents; loading conditions; mobile battery-operated devices; physical area requirements; quiescent current; zero load-current conditions; BiCMOS integrated circuits; CMOS technology; Capacitors; Frequency; Impedance; Integrated circuit technology; Regulators; Resistors; Silicon; Transconductors;
fLanguage :
English
Journal_Title :
Solid-State Circuits, IEEE Journal of
Publisher :
ieee
ISSN :
0018-9200
Type :
jour
DOI :
10.1109/4.818917
Filename :
818917
Link To Document :
بازگشت