IP Library Granted Patent US 12,375,047
Granted Patent B2
US 12,375,047 · App. 18/667,152 · Granted Jul 29, 2025

Radio-frequency power generator and control method

Inventors: Haoquan Zhang (Mountain View, CA); Anas Al Bastami (Cambridge, MA); David J. Perreault (Cambridge, MA)
Assignee: Massachusetts Institute of Technology
H03F3/211H03F3/2178H03F2200/451
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Quick Facts
Patent No.
US 12,375,047
App. No.
18/667,152
Granted
Jul 29, 2025
Kind
B2
Abstract

A power generator includes a plurality of amplifier blocks and a combiner. Each of the amplifier blocks include one or more amplifiers, and the combiner combines modulated power signals output from the amplifier blocks to generate an RF power signal of a load. The amplifier blocks are controlled to outphase the modulated power signals based on a phase angle. Ones of the amplifier blocks may perform discrete modulation to generate a respective one of the modulated power signals. The discrete modulation includes selecting different combinations of the amplifiers in one or more of the amplifier blocks to change the RF power signal in discrete steps. In embodiments, the amplifiers may be radio frequency power amplifiers.

Claims (34)

1. A power generator, comprising:

a plurality of amplifier blocks with at least one of the amplifier blocks comprising a plurality of amplifiers;

a combiner having inputs coupled to respective outputs of the plurality of amplifier blocks, the combiner configured to combine RF signals output from the plurality of amplifier blocks to provide at an output of the combiner an RF output signal, wherein the plurality of amplifier blocks are configured to outphase RF signals from the amplifier blocks based upon at least one phase angle, and wherein at least one of the plurality of amplifier blocks is configured to perform discrete modulation to generate a respective one of the RF signals, the discrete modulation including selecting different combinations of the plurality of amplifiers to change a voltage of the RF output signal in discrete steps; and

a tunable matching network configured to change an output impedance of the combiner in discrete steps to match changes in an impedance of a load.

2. The power generator of claim 1 , wherein the tunable matching network is configured to vary one or more shunt reactances to change the output impedance of the combiner in discrete steps to match the changes in the impedance of the load.

3. The power generator of claim 1 , wherein:

the output impedance of the combiner changes when different combinations of the plurality of amplifiers are selected for each one of the plurality of amplifier blocks, and

the tunable matching network converts the changing output impedance of the combiner to match the changes in the impedance of the load.

4. The power generator of claim 1 , wherein each of the plurality of amplifiers is configured to generate a fixed voltage.

5. The power generator of claim 1 , wherein each of the plurality of amplifiers is configured to operate in switched-mode.

6. The power generator of claim 1 , wherein the different combinations of the plurality of amplifiers are configured to implement a predetermined sequence of discrete step changes in the RF output signal.

7. The power generator of claim 1 , wherein each of the plurality of amplifier blocks is configured to generate a corresponding one of the RF signals based on at least one modulated power supply voltage.

8. The power generator of claim 7 , further comprising a discrete drain modulator configured to modulate the power supply voltage via a discrete drain modulation.

9. The power generator of claim 1 , wherein each of the plurality of amplifier blocks are configured to operate in common mode.

10. The power generator of claim 1 , wherein at least one of the plurality of amplifier blocks is configured to receive a signal, the signal controlling an on state or an off state of the at least one of the plurality of amplifier blocks to change the RF output signal in discrete steps.

11. The power generator of claim 10 , wherein the discrete step changes of the RF output signal caused by selecting different combinations of the plurality of amplifiers is different from the discrete step change of the RF output signal caused by controlling the on state or the off state of the at least one of the plurality of amplifier blocks.

12. The power generator of claim 11 , wherein the at least one of the plurality of amplifier blocks has one or more transistors and is configurable to be held in the off state by holding at least one of the one or more transistors in a fixed gating state.

13. The power generator of claim 1 , wherein the load includes a plasma generator.

14. A method, comprising:

generating a first modulated radio frequency (RF) signal from a first amplifier block;

generating a second modulated RF signal from at least a second amplifier block;

outphasing the first and second modulated RF signals based on a phase angle;

generating, by a combiner, an RF output signal for a load based on the outphased first and second modulated RF signals; and

changing, by a tunable matching network, an output impedance of the combiner in discrete steps to match an impedance of a load.

15. The method of claim 14 , wherein changing the output impedance of the combiner in discrete steps to match the impedance of the load comprises varying one or more shunt reactances.

16. The method of claim 14 , wherein the first amplifier block and the second amplifier block are comprised of a plurality of amplifiers, wherein the output impedance of the combiner changes when different combinations of the plurality of amplifiers are selected for each one of the plurality of amplifier blocks.

17. The method of claim 16 , further comprising:

converting, by the tunable matching network, the changing output impedance of the combiner to match changes in the impedance of the load.

18. The method of claim 14 , further comprising:

inputting at least a first supply voltage to the first amplifier block; and

inputting at least a second supply voltage to the second amplifier block,

wherein the first and second supply voltages are discrete drain modulated voltages.

19. The method of claim 14 , wherein the first amplifier block has one or more transistors and is configurable to be held in an off state by holding at least one of the one or more transistors in a fixed gating state.

20. The method of claim 14 , wherein the load includes a plasma generator.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 17, 2024
From: PERREAULT, DAVID J.; AL BASTAMI, ANAS; ZHANG, HAOQUAN
To: MASSACHUSETTS INSTITUTE OF TECHNOLOGY
Reel/Frame 067446/0639 →
Continuity (5)
Continuation 18299808 · Apr 13, 2023
Continuation 17390212 · Jul 30, 2021
Provisional Application 63085432 · Sep 30, 2020
Provisional Application 63059532 · Jul 31, 2020
Related Publication 20240305254A1 · Sep 12, 2024
References Cited (64)
US 7719377B2 · Luu et al. · 2010 [cited by applicant]
US 8164384B2 · Dawson et al. · 2012 [cited by applicant]
US 8824978B2 · Briffa et al. · 2014 [cited by applicant]
US 8957727B2 · Dawson et al. · 2015 [cited by applicant]
US 9020453B2 · Briffa et al. · 2015 [cited by applicant]
US 9166536B2 · Briffa · 2015 [cited by examiner]
US 9923518B2 · Perreault et al. · 2018 [cited by applicant]
US 10075064B2 · Perreault · 2018 [cited by examiner]
US 10790784B2 · Jurkov · 2020 [cited by examiner]
US 11664773B2 · Zhang et al. · 2023 [cited by applicant]
US 11909358B1 · Perreault · 2024 [cited by examiner]
US 20030125065A1 · Barak et al. · 2003 [cited by applicant]
US 20050110590A1 · Korol et al. · 2005 [cited by applicant]
US 20100117727A1 · Dawson · 2010 [cited by examiner]
US 20110187437A1 · Perreault · 2011 [cited by examiner]
US 20110260797A1 · Lee et al. · 2011 [cited by applicant]
US 20110273234A1 · van der Heijden et al. · 2011 [cited by applicant]
US 20130038389A1 · Sorrells et al. · 2013 [cited by applicant]
US 20140132354A1 · Briffa et al. · 2014 [cited by applicant]
US 20140269892A1 · Ma et al. · 2014 [cited by applicant]
US 20140333375A1 · Karthaus · 2014 [cited by applicant]
US 20150171768A1 · Perreault · 2015 [cited by examiner]
US 20150194940A1 · Briffa et al. · 2015 [cited by applicant]
US 20160164466A1 · Briffa · 2016 [cited by examiner]
US 20170366148A1 · Jang et al. · 2017 [cited by applicant]
US 20190173438A1 · Kiehl et al. · 2019 [cited by applicant]
US 20190326093A1 · Gurov et al. · 2019 [cited by applicant]
US 20200212848A1 · Lemberg · 2020 [cited by examiner]
US 20210119587A1 · Watkins · 2021 [cited by examiner]
US 20210408981A1 · Watkins · 2021 [cited by examiner]
US 20230246607A1 · Zhang et al. · 2023 [cited by applicant]
TW I487270 · 2011 [cited by applicant]
Extended European Search Report dated Nov. 18, 2024, for European Patent Application No. 21849794.9; 11 pages. [cited by applicant]
Barton et al., “Transmission-Line-Based Multi-Way Lossless Power Combining and Outphasing System”; IEEE MTT-S International Microwave Symposium; Jun. 2014; 4 pages. [cited by applicant]
Jurkov et al., “Tunable Matching Networks Based on Phase-Switched Impedance Modulation”; IEEE Transactions on Power Electronics, vol. 35, No. 10; Oct. 2020; 18 pages. [cited by applicant]
Al Bastami, “Efficient Radio Frequency Power Generation and Impedance Matching,” PhD Dissertation, Massachusetts Institute of Technology, Sep. 2020; Part 1, pp. 1-130. [cited by applicant]
Al Bastami, “Efficient Radio Frequency Power Generation and Impedance Matching,” PhD Dissertation, Massachusetts Institute of Technology, Sep. 2020; Part 2, pp. 131-261. [cited by applicant]
Al Bastami et al., “A 1.5 kW Radio-Frequency Tunable Matching Network Based on Phase-Switched Impedance Modulation,” IEEE Open Journal of Power Electronics vol. 1, Apr. 16, 2020, 15 Pages. [cited by applicant]
Al Bastami et al., “Dynamic Matching System for Radio-Frequency Plasma Generation,” 2016 IEEE Energy Conversion Congress and Exposition, Sep. 2016, 7 Pages. [cited by applicant]
Barton et al., “Experimental Validation of a Four-Way Outphasing Combiner for Microwave Power Amplification,” IEEE Microwave and Wireless Component Letters, vol. 23, No. 1, Jan. 2013; 3 Pages. [cited by applicant]
Barton et al. “Four-Way Microstrip-Based Power Combining for Microwave Outphasing Power Amplifiers,” IEEE Transactions on Circuits and Systems I, vol. 61, No. 10, Oct. 2014; 13 Pages. [cited by applicant]
Braun et al., “A High Frequency Inverter for Variable Load Operation,” IEEE Journal of Emerg. And Sel. Topics in Power Electron., vol. 7, No. 2, Jun. 2019; 16 Pages. [cited by applicant]
Chung, et al., “Asymmetric Multilevel Outphasing Transmitter using Class-E Pas with Discrete Pulse Width Modulation,” 2010 IEEE MTT-S International Microwave Symposium, May 2010, 4 Pages. [cited by applicant]
Chung et al., “Resonant Converter Design Using Two-Port Passive Network: Single Frequency Design,” 2018 IEEE Workshop on Modeling and Control in Power Electronics (COMPEL 18), Jun. 2018; 7 Pages. [cited by applicant]
Economou, “Pulsed Plasma Etching for Semiconductor Manufacturing.” Journal of Physics D: Appl. Physics, vol. 47, No. 30, Jul. 1, 2014; 27 Pages. [cited by applicant]
Galapon, et al., “Measuring Dynamic On Resistance in GaN Transistors at MHz Frequencies,” 2018 IEEE 19 [cited by applicant]
Godoy et al., “A 2.4-GHz, 27-dBm Asymmetric Multilevel Outphasing Power Amplifier in 65-nm CMOS,” IEEE Journal of Solid-State Circuits, vol. 47, No. 10; Oct. 2012; 13 Pages. [cited by applicant]
Godoy et al., “Outphasing Energy Recovery Amplifier with Resistance Compression for Improved Efficiency,” IEEE Transactions on Microwave Theory and Techniques, vol. 57, No. 12, Dec. 2009; 12 Pages. [cited by applicant]
Han et al., “Resistance Compression Networks for Radio-Frequency Power Conversion,” IEEE Transactions on Power Electronics, vol. 22, No. 1, Jan. 2007; 13 Pages. [cited by applicant]
Jurkov et al., “Lossless Multi-Way Power Combining and Outphasing for High-Frequency Resonant Inverters,” IEEE Transactions on Power Electronics, vol. 29, No. 4, Apr. 2014; 16 Pages. [cited by applicant]
Kumar et al., “A High-Frequency Inverter Architecture for Providing Variable Compensation in Wireless Power Transfer Systems,” IEEE, Mar. 2018, 6 Pages. [cited by applicant]
Perreault, “A New Architecture for High-Frequency Variable-Load Inverters,” 2016 IEEE Workshop on Control and Modeling for Power Electronics (COMPEL16), Jun. 2016, 8 Pages. [cited by applicant]
Perreault, “A New Power Combining and Outphasing Modulation System for High-Efficiency Power Amplification,” IEEE Transaction on Circuits and Systems I, Regular Papers, vol. 58, No. 8; Feb. 11, 2011; 4 Pages. [cited by applicant]
Rivas et al., “A High-Frequency Resonant Inverter Topology With Low-Voltage Stress,” IEEE Transactions on Power Electronics, vol. 23, No. 4, Jul. 2008, 13 Pages. [cited by applicant]
Roslaniec et al., “Design of Single-Switch inverters for Variable Resistance/Load Modulation Operation,” IEEE Transactions on Power Electronics, vol. 30, No. 6, Jun. 2015; 15 Pages. [cited by applicant]
Sokal, “Class-E RF Power Amplifiers,” QEX, Jan./Feb. 2001, 12 Pages. [cited by applicant]
Zulauf et al., “Active Power Device Selection in High- and Very-High-Frequency Power Converters,” IEEE Transactions on Power Electronics, Oct. 8, 2018, 16 Pages. [cited by applicant]
Zulauf et al., “C [cited by applicant]
Taiwan Non-Final Office Action (with English Translation) dated Jan. 6, 2022 for Taiwan Application No. 110128131; 27 Pages. [cited by applicant]
PCT International Search Report and Written Opinion dated Nov. 18, 2021 for International Application No. PCT/US 2021/043844; 9 Pages. [cited by applicant]
Response (with Machine English Translation of Response and with Amended Claims in English) to Taiwan Office Action dated Jan. 6, 2022 for Taiwan Application No. 110128131; Response filed on Apr. 8, 2022; 66 Pages. [cited by applicant]
Decision of Rejection in Primary Examination (with English Translation) for Taiwan Application No. 110128131; filed on Apr. 8, 2022; 10 Pages. [cited by applicant]
Office Action dated Nov. 2, 2023, for U.S. Appl. No. 18/299,808; 12 pages. [cited by applicant]
Response to Office Action dated Nov. 2, 2023, for U.S. Appl. No. 18/299,808; Response filed Feb. 2, 2024; 9 pages. [cited by applicant]