IP Library › Granted Patent US 12,231,090
Granted Patent B2
US 12,231,090 · App. 17/545,164 · Granted Feb 18, 2025

Reconfigurable asymmetrical load-modulated balanced amplifiers

Inventors: Kenle Chen (Oviedo, FL); Yuchen Cao (Orlando, FL); Haifeng Lyu (Orlando, FL)
Assignee: University of Central Florida Research Foundation, Inc.
H03F1/0288H03F1/42H03F3/245H03F2200/451
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Quick Facts
Patent No.
US 12,231,090
App. No.
17/545,164
Granted
Feb 18, 2025
Kind
B2
Abstract

Described herein is a reconfigurable asymmetrical load-modulated balanced amplifier. The reconfigurable asymmetrical load-modulated balanced amplifier can include a radio frequency (RF) input port, an RF output port, a peaking amplifier circuit operably coupled between the RF input and RF output ports, where the peaking amplifier circuit is a balanced amplifier that comprises a pair of asymmetrical power amplifiers, and a carrier amplifier circuit operably coupled to the RF input port.

Claims (30)

1. An asymmetrical load-modulated balanced amplifier, comprising:

a radio frequency (RF) input port;

a RF output port;

a peaking amplifier circuit operably coupled between the RF input and RF output ports, wherein the peaking amplifier circuit is a balanced amplifier that comprises a pair of asymmetrical power amplifiers, wherein each of the pair of asymmetrical power amplifiers of the peaking amplifier circuit has a different bias voltage, and wherein an asymmetry of the different bias voltages is swapped in dependence on a frequency of a signal received at the RF input port; and

a carrier amplifier circuit operably coupled to the RF input port.

2. The asymmetrical load-modulated balanced amplifier of claim 1 , wherein the pair of asymmetrical power amplifiers have asymmetric current and/or power scaling characteristics.

3. The asymmetrical load-modulated balanced amplifier of claim 1 , wherein each of the pair of asymmetrical power amplifiers of the peaking amplifier circuit has a different physical size.

4. The asymmetrical load-modulated balanced amplifier of claim 1 , wherein the carrier amplifier circuit is configured to provide gain at any power level of an input RF signal.

5. The asymmetrical load-modulated balanced amplifier of claim 1 , wherein the peaking amplifier circuit is configured to provide gain only at power levels beyond a predetermined level of an input RF signal.

6. The asymmetrical load-modulated balanced amplifier of claim 1 , wherein the asymmetrical load-modulated balanced amplifier is configured for load modulation from peak power to a predefined output power back-off.

7. The asymmetrical load-modulated balanced amplifier of claim 1 , wherein the pair of asymmetrical power amplifiers of the peaking amplifier circuit are coupled through first and second quadrature couplers.

8. The asymmetrical load-modulated balanced amplifier of claim 7 , wherein each of the first and second quadrature couplers is a branch-line coupler, a coupled-line coupler, a Lange coupler, a transformer-based coupler, or a lumped coupler comprising inductors and capacitors.

9. The asymmetrical load-modulated balanced amplifier of claim 1 , further comprising a phase shifter, wherein the peaking amplifier circuit is operably coupled to the RF input through the phase shifter.

10. The asymmetrical load-modulated balanced amplifier of claim 9 , wherein the phase shifter is a fixed or tunable phase shifter.

11. The asymmetrical load-modulated balanced amplifier of claim 10 , the phase shifter comprises at least one of a transmission line, a bandpass filter, a low-pass filter, a high-pass filter, or a network comprising inductors, capacitors, and/or resistors.

12. The asymmetrical load-modulated balanced amplifier of claim 9 , wherein the phase shifter is a transmission line that is configured to provide an optimal frequency-dependent phase offset between the carrier and peaking amplifier circuits over an operational frequency range.

13. The asymmetrical load-modulated balanced amplifier of claim 12 , wherein a relative phase difference between the carrier and peaking amplifier circuits is offset by a given length of the transmission line.

14. The asymmetrical load-modulated balanced amplifier of claim 1 , further comprising a power divider, wherein the power divider is configured to split an input RF signal between the carrier and peaking amplifier circuits.

15. An asymmetrical load-modulated balanced amplifier system, comprising:

the asymmetrical load-modulated balanced amplifier of claim 1 ; and

a controller, wherein the controller is configured to apply a first biasing scheme to the pair of asymmetrical power amplifiers for a first frequency range of a signal received at the RF input port, and apply a second biasing scheme to the pair of asymmetrical power amplifiers for a second frequency range of the signal received at the RF input port.

16. The asymmetrical load-modulated balanced amplifier system of claim 15 , wherein the first and second biasing schemes swap an asymmetry of respective drain or collector bias voltages of the pair of asymmetrical power amplifiers, or wherein the first and second biasing schemes swap an asymmetry of respective gate or base bias voltages of the pair of asymmetrical power amplifiers.

17. The asymmetrical load-modulated balanced amplifier of claim 1 , wherein the different bias voltage is a voltage at a gate of a transistor.

18. The asymmetrical load-modulated balanced amplifier of claim 1 , wherein the different bias voltage is a voltage of at a base of a transistor.

19. An asymmetrical load-modulated balanced amplifier, comprising:

a radio frequency (RF) input port;

a RF output port;

a peaking amplifier circuit operably coupled between the RF input and RF output ports, wherein the peaking amplifier circuit is a balanced amplifier that comprises a pair of asymmetrical power amplifiers, wherein each of the pair of asymmetrical power amplifiers of the peaking amplifier circuit has a different supply voltage, and wherein an asymmetry of the different supply voltages is swapped in dependence on a frequency of a signal received at the RF input port; and

a carrier amplifier circuit operably coupled to the RF input port.

20. The asymmetrical load-modulated balanced amplifier of claim 19 , wherein the different supply voltage is a voltage of a drain of a transistor or a voltage at a collector of a transistor.

Assignments (2)
CONFIRMATORY LICENSE Recorded Feb 6, 2025
From: UNIVERSITY OF CENTRAL FLORIDA
To: NATIONAL SCIENCE FOUNDATION
Reel/Frame 070127/0220 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 8, 2022
From: CHEN, KENLE; CAO, YUCHEN; LYU, HAIFENG
To: UNIVERSITY OF CENTRAL FLORIDA RESEARCH FOUNDATION, INC.
Reel/Frame 059196/0669 →
Continuity (2)
Provisional Application 63146869 · Feb 8, 2021
Related Publication 20220255506A1 · Aug 11, 2022
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