Title :
Quasi-linear amplification using self-phase distortion compensation technique
Author :
Hayashi, Hitoshi ; Nakatsugawa, Masashi ; Muraguchi, Masahiro
Author_Institution :
NTT Wireless Syst. Labs., Yokosuka, Japan
fDate :
11/1/1995 12:00:00 AM
Abstract :
This paper demonstrates a self-phase distortion compensation technique to realize linear power amplifiers, in which the positive phase deviation from a common-source FET and the negative phase deviation from a common-gate FET cancel each other. It is confirmed both theoretically and experimentally that increasing the drain-to-source conductance, Gd, causes the self-phase distortion compensation effect. An experimental power amplifier for L-band personal communications systems, which employs the cascode connection, shows good phase deviation performance. More than 20-dB gain, 21-dBm output power, and 50% power added efficiency are obtained along with the adjacent channel interference of -52 dBc in 192-kHz bands at 600-kHz offset frequency from 1.9 GHz at the operating voltage of only 3 V. The demonstrated performances satisfy the specifications for the 1.9-GHz Japanese Personal Handy-phone System (PHS) utilizing the π/4-shift QPSK modulation scheme. The proposed technique is suitable for MMIC design, and allows the design of handsets that are small, lightweight, and have long operating times
Keywords :
MMIC power amplifiers; UHF power amplifiers; adjacent channel interference; compensation; cordless telephone systems; field effect MMIC; personal communication networks; quadrature phase shift keying; 1.9 GHz; 20 dB; 3 V; 50 percent; Japanese personal handy-phone system; L-band; MMIC; QPSK; adjacent channel interference; cascode connection; common-gate FET; common-source FET; drain-to-source conductance; linear power amplifiers; negative phase deviation; operating voltage; output power; personal communications systems; phase deviation performance; positive phase deviation; power added efficiency; quasi-linear amplification; self phase distortion compensation; FETs; Frequency; Interchannel interference; L-band; Performance gain; Phase distortion; Power amplifiers; Power generation; Quadrature phase shift keying; Voltage;
Journal_Title :
Microwave Theory and Techniques, IEEE Transactions on