Abstract
The escalating data demands in contemporary wireless communications necessitate advanced power amplifier (PA) designs to meet stringent requirements of next-generation 5G millimeter-wave transceivers. This paper proposes an ultra-compact broadband Doherty Power Amplifier (DPA). Utilizing a transformer-based output combining and matching network, the proposed PA achieves a significantly smaller chip area compared to conventional Doherty PA design, as well as a low-loss output matching in the millimeter-wave frequency range. An inductor-based Wilkinson power divider is also employed for broadband power splitting. Furthermore, an adaptive bias network is adopted to enable real-time input signal tracking to optimize the linearity and efficiency of the PA, resulting in a high power-back-off efficiency. The simulation results demonstrate a saturated output power (Psat) of 22.4 dBm with a peak power-added efficiency (PAE) of 31%, and an output power of 16.7 dBm with a 6-dB back-off PAE of 16%. The DPA achieves an 8 GHz 1-dB Psat bandwidth (BW) from 18.5 GHz to 28.5 GHz and a 13.6 GHz 3-dB small-signal bandwidth from 15.9 GHz to 29.5 GHz in 45nm SOI CMOS technology.
Original language | English |
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Pages (from-to) | 1075-1079 |
Number of pages | 5 |
Journal | IEEE Information Technology and Mechatronics Engineering Conference, ITOEC |
Issue number | 2025 |
DOIs | |
Publication status | Published - 2025 |
Externally published | Yes |
Event | 8th IEEE Information Technology and Mechatronics Engineering Conference, ITOEC 2025 - Chongqing, China Duration: 14 Mar 2025 → 16 Mar 2025 |
Keywords
- 5G
- adaptive biasing
- broadband
- cascode
- CMOS
- Doherty Power Amplifier
- mm-wave
- power added efficiency
- Wilkinson power divider