Pseudo-Doherty Load-Modulated Balanced Amplifier With Wide Bandwidth and Extended Power Back-Off Range

Yuchen Cao, Kenle Chen

IEEE Transactions on Microwave Theory and Techniques · 2020 · 167 citations · 46 references

Concepts

TL;DR

The paper introduces a pseudo‑Doherty load‑modulated balanced amplifier (PD‑LMBA) with a unique load‑modulation characteristic distinct from existing LMBAs and Doherty power amplifiers. The PD‑LMBA achieves optimal load‑modulation by combining a carrier control amplifier with a peaking balanced amplifier and precise phase/amplitude control, and is implemented in GaN technology for wideband operation. Experimental results show the PD‑LMBA delivers 58–72 % efficiency at 42.5 dBm peak power, 47–58 % at 10‑dB OBO, and 44–53 % over the 1.5–2.7 GHz band when driven by a 10‑MHz LTE signal with 9.5‑dB PAPR.

Abstract

This article presents a novel architecture of load-modulated balanced amplifier (LMBA) with a unique load-modulation characteristic different from any existing LMBAs and Doherty power amplifiers (DPAs), which is named pseudo-Doherty LMBA (PD-LMBA). Based on a special combination of control amplifier (carrier) and balanced amplifier (peaking) together with proper phase and amplitude controls, an optimal load-modulation behavior can be achieved for PD-LMBA, leading to maximized efficiency over extended power back-off range. More importantly, the efficiency optimization can be achieved with only a static setting of phase offset at a given frequency, which greatly simplifies the complexity for phase control. Furthermore, the cooperations of the carrier and peaking amplifiers in PD-LMBA are fully decoupled, thus lifting the fundamental bandwidth barrier imposed on the Doherty-based active load modulation. Upon theoretical proof of these discoveries, a wideband RF-input PD-LMBA is physically developed using the GaN technology for experimental demonstration. The prototype achieves a highly efficient performance from 1.5 to 2.7 GHz, e.g., 58%-72% of efficiency at 42.5-dBm peak power and 47%-58% at 10-dB output back-off (OBO). When stimulated by a 10-MHz long term evolution (LTE) signal with a 9.5-dB peak-to-average power ratio (PAPR), the developed PD-LMBA achieves an efficiency of 44%-53% over the entire bandwidth at an average output power of around 33 dBm.

References

46