Deliberate Source/Load Mismatch for Linearity and Efficiency of Discrete Supply Modulated GaN PAs
Journal article, 2024

The effect of source (gate-side) and load (drain-side) impedance match on the linearity and efficiency of an envelope-tracked power amplifier (PA) is investigated. Conventionally designed GaN PAs exhibit an increasing gain magnitude and phase with increasing drain supply voltage. When this supply voltage is dynamically modulated in discrete levels for efficiency enhancement, the changing gain distorts the output signal and degrades linearity. The dependency of the PA gain on drain supply voltage can be minimized, however, through proper selection of the source and load impedances. This is illustrated through source/load pull simulations of a 8 x 100 mu m GaN HEMT, which reveal impedances that result in low gain magnitude and phase variation. Three PA design (matching) cases are then chosen and their performances are evaluated with an ideal dynamically changing supply. For the comparison, envelope simulations with a 67.5-MHz 64-QAM signal are performed and show that dynamic supply modulation of the mismatched PA design improves linearity and efficiency over a conventional PA designed for maximum efficiency/gain. The simulation results are validated through measurements of a deliberately mismatched, 6.2-12.6-GHz, 5-W GaN MMIC PA envelope-tracked with a GaN MMIC four-level supply modulator. Compared with a static supply, the dynamic results show improvement in average efficiency and a small penalty in linearity without using DPD.

Envelope tracking

GaN

power amplifier (PA)

supply modulation

Impedance

Voltage

Linearity

Modulation

linearity

Distortion

Load modeling

Gain

Author

Connor Nogales

University of Colorado at Boulder

Paul Flaten

University of Colorado at Boulder

Morten Olavsbraten

Norwegian University of Science and Technology (NTNU)

Zoya Popovic

University of Colorado at Boulder

Gregor Lasser

Chalmers, Microtechnology and Nanoscience (MC2), Microwave Electronics

IEEE Transactions on Microwave Theory and Techniques

0018-9480 (ISSN) 15579670 (eISSN)

Vol. 72 12 6833-6844

Subject Categories

Telecommunications

Computational Mathematics

Signal Processing

Other Electrical Engineering, Electronic Engineering, Information Engineering

DOI

10.1109/TMTT.2024.3413531

More information

Latest update

12/6/2024