Title :
A 16-
Audio Amplifier With 93.8-mW Peak Load Power and 1.43-mW Quiescent Power Consumption
Author :
Mohan, Chaitanya ; Furth, Paul M.
Author_Institution :
Klipsch Sch. of Electr. & Comput. Eng., New Mexico State Univ., Las Cruces, NM, USA
fDate :
3/1/2012 12:00:00 AM
Abstract :
A low-distortion three-stage class-AB audio amplifier is designed to drive a 16-Ω headphone speaker load. High power efficiency is achieved using fully differential internal stages with local common-mode feedback and replica biasing of the output stage. The threshold voltage of nMOS transistors was made comparable to that of pMOS transistors by negatively biasing the p-substrate in order to achieve high linearity. Multiple compensation networks guarantee the stability of the audio amplifier when driving a wide range of capacitive loads from 10 pF to 5 nF. Peak power delivered to the load is measured as 93.8 mW (corresponding to 46.9 mW RMS) with -77.9-dB total harmonic distortion; quiescent power is only 1.43 mW. The power-supply rejection ratio from both ±1.5-V supplies exceeds 63 dB over the entire audio frequency range. The design is implemented in a 0.5-μm CMOS process and occupies 0.34 mm2 of area.
Keywords :
CMOS analogue integrated circuits; audio-frequency amplifiers; circuit stability; harmonic distortion; headphones; integrated circuit design; low-power electronics; CMOS process; audio amplifier stability; capacitive loads; fully differential internal stages; headphone speaker load; local common-mode feedback; low-distortion three-stage class-AB audio amplifier design; multiple compensation networks; nMOS transistors; negative biasing; peak load power; power 1.43 mW; power 98.3 mW; power-supply rejection ratio; quiescent power consumption; replica biasing; resistance 16 ohm; size 0.5 mum; threshold voltage; total harmonic distortion; voltage -1.5 V; voltage 1.5 V; Gain; Headphones; Logic gates; MOS devices; Poles and zeros; Resistors; Transistors; Audio amplifier; Miller compensation; class-AB amplifier; headphone driver; local common-mode feedback (CMFB) network; replica bias;
Journal_Title :
Circuits and Systems II: Express Briefs, IEEE Transactions on
DOI :
10.1109/TCSII.2012.2186361