Title :
Design of Highly Efficient Broadband Class-E Power Amplifier Using Synthesized Low-Pass Matching Networks
Author :
Chen, Kenle ; Peroulis, Dimitrios
Author_Institution :
Sch. of Electr. & Comput. Eng., Purdue Univ., West Lafayette, IN, USA
Abstract :
A new methodology for designing and implementing high-efficiency broadband Class-E power amplifiers (PAs) using high-order low-pass filter-prototype is proposed in this paper. A GaN transistor is used in this work, which is carefully modeled and characterized to prescribe the optimal output impedance for the broadband Class-E operation. A sixth-order low-pass filter-matching network is designed and implemented for the output matching, which provides optimized fundamental and harmonic impedances within an octave bandwidth (L-band). Simulation and experimental results show that an optimal Class-E PA is realized from 1.2 to 2 GHz (50%) with a measured efficiency of 80%-89%, which is the highest reported today for such a bandwidth. An overall PA bandwidth of 0.9-2.2 GHz (84%) is measured with 10-20-W output power, 10-13-dB gain, and 63%-89% efficiency throughout the band. Furthermore, the Class-E PA is characterized through measurements using constant-envelop global system for mobile communications signals, indicating a favorable adjacent channel power ratio from -40 to -50 dBc within the entire bandwidth.
Keywords :
III-V semiconductors; gallium compounds; impedance matching; low-pass filters; power amplifiers; wide band gap semiconductors; GaN; adjacent channel power ratio; broadband class-E power amplifier; harmonic impedances; high-order low-pass filter-prototype; low-pass matching networks; mobile communications signals; octave bandwidth; output matching; output power; power 10 W to 20 W; sixth-order low-pass filter-matching network; transistor; Bandwidth; Broadband communication; Gallium nitride; Harmonic analysis; Power amplifiers; Transistors; Broadband; Class-E; GaN; high efficiency; high power; low-pass matching network; power amplifier (PA); synthesis;
Journal_Title :
Microwave Theory and Techniques, IEEE Transactions on
DOI :
10.1109/TMTT.2011.2169080