Urvoy et al., 2025 - Google Patents
Orthogonal load-modulated balanced amplifier for back-off efficiency enhancement and agile frequency configurationUrvoy et al., 2025
View PDF- Document ID
- 5416260441638114856
- Author
- Urvoy J
- Azad E
- Bogusz A
- Cripps S
- Quaglia R
- Publication year
- Publication venue
- IEEE Transactions on Microwave Theory and Techniques
External Links
Snippet
This article presents the theory of operation and the design guidelines for an orthogonal load-modulated balanced amplifier (OLMBA) with back-off efficiency enhancement. The single-input balanced amplifier is operated by asymmetrically biasing the devices, similar to …
Classifications
-
- H—ELECTRICITY
- H03—BASIC ELECTRONIC CIRCUITRY
- H03F—AMPLIFIERS
- H03F1/00—Details of amplifiers with only discharge tubes, only semiconductor devices or only unspecified devices as amplifying elements
- H03F1/02—Modifications of amplifiers to raise the efficiency, e.g. gliding Class A stages, use of an auxiliary oscillation
- H03F1/0205—Modifications of amplifiers to raise the efficiency, e.g. gliding Class A stages, use of an auxiliary oscillation in transistor amplifiers
- H03F1/0294—Modifications of amplifiers to raise the efficiency, e.g. gliding Class A stages, use of an auxiliary oscillation in transistor amplifiers using vector summing of two or more constant amplitude phase-modulated signals
-
- H—ELECTRICITY
- H03—BASIC ELECTRONIC CIRCUITRY
- H03F—AMPLIFIERS
- H03F1/00—Details of amplifiers with only discharge tubes, only semiconductor devices or only unspecified devices as amplifying elements
- H03F1/32—Modifications of amplifiers to reduce non-linear distortion
- H03F1/3241—Modifications of amplifiers to reduce non-linear distortion using predistortion circuits
- H03F1/3247—Modifications of amplifiers to reduce non-linear distortion using predistortion circuits using feedback acting on predistortion circuits
-
- H—ELECTRICITY
- H03—BASIC ELECTRONIC CIRCUITRY
- H03F—AMPLIFIERS
- H03F3/00—Amplifiers with only discharge tubes or only semiconductor devices as amplifying elements
- H03F3/20—Power amplifiers, e.g. Class B amplifiers, Class C amplifiers
- H03F3/21—Power amplifiers, e.g. Class B amplifiers, Class C amplifiers with semiconductor devices only
- H03F3/217—Class D power amplifiers; Switching amplifiers
- H03F3/2176—Class E amplifiers
-
- H—ELECTRICITY
- H03—BASIC ELECTRONIC CIRCUITRY
- H03F—AMPLIFIERS
- H03F3/00—Amplifiers with only discharge tubes or only semiconductor devices as amplifying elements
- H03F3/189—High frequency amplifiers, e.g. radio frequency amplifiers
- H03F3/19—High frequency amplifiers, e.g. radio frequency amplifiers with semiconductor devices only
-
- H—ELECTRICITY
- H03—BASIC ELECTRONIC CIRCUITRY
- H03F—AMPLIFIERS
- H03F3/00—Amplifiers with only discharge tubes or only semiconductor devices as amplifying elements
- H03F3/60—Amplifiers in which coupling networks have distributed constants, e.g. with waveguide resonators
Similar Documents
Publication | Publication Date | Title |
---|---|---|
Pednekar et al. | Analysis and design of a Doherty-like RF-input load modulated balanced amplifier | |
Pang et al. | Broadband RF-input continuous-mode load-modulated balanced power amplifier with input phase adjustment | |
Eskandari et al. | Continuous-mode inverse class-GF power amplifier with second-harmonic impedance optimization at device input | |
Chu et al. | Waveform engineered sequential load modulated balanced amplifier with continuous class-F− 1 and class-J operation | |
Zhou et al. | Postmatching Doherty power amplifier with extended back-off range based on self-generated harmonic injection | |
Li et al. | Ultra-wideband dual-mode Doherty power amplifier using reciprocal gate bias for 5G applications | |
Hallberg et al. | A Doherty power amplifier design method for improved efficiency and linearity | |
Liang et al. | Novel outphasing power amplifiers designed with an analytic generalized Doherty–Chireix continuum theory | |
Xu et al. | Enhancing bandwidth and back-off range of Doherty power amplifier with modified load modulation network | |
de Falco et al. | Load modulation of harmonically tuned amplifiers and application to outphasing systems | |
Liang et al. | Wideband two-way hybrid Doherty outphasing power amplifier | |
Belchior et al. | Sequential LMBA design technique for improved bandwidth considering the balanced amplifiers off-state impedance | |
Chu et al. | Broadband sequential load modulated balanced amplifier with extended design space using second harmonic manipulation | |
Zhang et al. | A broadband Doherty power amplifier with hybrid class-EFJ mode | |
Yang et al. | A precise harmonic control technique for high efficiency concurrent dual-band continuous class-F power amplifier | |
Pang et al. | Design of continuous‐mode GaN power amplifier with compact fundamental impedance solutions on package plane | |
Zhou et al. | A wideband and highly efficient circulator load modulated power amplifier architecture | |
Gao et al. | Dual-band three-way Doherty power amplifier employing dual-mode gate bias and load compensation network | |
Alsulami et al. | A novel 3-way dual-band Doherty power amplifier for enhanced concurrent operation | |
Nan et al. | A broadband Doherty power amplifier with a new load modulation network | |
Liang et al. | Accelerated design methodology for dual-input Doherty power amplifiers | |
Akbarpour et al. | Analytical design methodology for generic Doherty amplifier architectures using three-port input/output networks | |
Shahmoradi et al. | A broadband Doherty power amplifier for sub-6GHz 5G applications | |
Chen et al. | Simplified emulation of active load modulation for a millimeter-wave GaN MMIC Doherty power amplifier design | |
Xuan et al. | Design of a 0.4–3.9-GHz wideband high-efficiency power amplifier based on a novel bandwidth extended matching network |