IP Library › Granted Patent US 11,784,611
Granted Patent B2
US 11,784,611 · App. 17/198,753 · Granted Oct 10, 2023

Power amplifier antenna structure

Inventors: Patrick Marcus Naraine (Irvine, CA); William J. Domino (Yorba Linda, CA); Serge Francois Drogi (Flagstaff, AZ); René Rodríguez (Rancho Santa Margarita, CA)
Assignee: Skyworks Solutions, Inc.
H03F1/0288H01Q9/0407H03F3/195H03F3/213
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Quick Facts
Patent No.
US 11,784,611
App. No.
17/198,753
Granted
Oct 10, 2023
Kind
B2
Abstract

Integrated Doherty power amplifiers are provided herein. In certain implementations, a Doherty power amplifier includes a carrier amplification stage that generates a carrier signal, a peaking amplification stage that generates a peaking signal, and an antenna structure that combines the carrier signal and the peaking signal. The antenna structure radiates a transmit wave in which the carrier signal and the peaking signal are combined with a phase shift.

Claims (22)

1. A radio frequency antenna structure that combines and phase shifts a carrier signal and a peaking signal, the antenna structure including a patch antenna element and an impedance transformer having a first metal region and a second metal region of different widths, the second metal region connecting the first metal region to the patch antenna element, the impedance transformer further including a first port that receives the carrier signal, a second port that receives the peaking signal and a spacing between the first port and the second port that provides a phase delay.

2. The radio frequency antenna structure of claim 1 further comprising a substrate that includes the patch antenna element and the impedance transformer.

3. The radio frequency antenna structure of claim 1 wherein the phase delay is 90 degrees.

4. The radio frequency antenna structure of claim 1 wherein an amount of the phase delay is based on an amount of the spacing.

5. The radio frequency antenna structure of claim 1 further wherein the first metal region is wider than the second metal region.

6. The radio frequency antenna structure of claim 1 wherein the impedance transformer provides output matching to a carrier amplification stage.

7. The radio frequency antenna structure of claim 1 wherein the impedance transformer provides output matching to a peaking amplification stage.

8. The radio frequency antenna structure of claim 1 wherein the phase delay provides a phase shift of about 90 degrees at a frequency of a transmit wave.

9. The radio frequency antenna structure of claim 1 wherein the antenna structure is formed on a substrate where a ground plan extends at least in part beneath the patch antenna element.

10. The radio frequency antenna structure of claim 1 wherein the antenna structure is formed on a substrate where a ground plan extends at least in part beneath the patch antenna element and the impedance transformer.

11. A mobile device comprising:

a transceiver configured to generate a radio frequency input signal; and

an antenna structure that combines and phase shifts a carrier signal and a peaking signal, the antenna structure including an impedance transformer having a first metal region and a second metal region of different widths, the second metal region connecting the first metal region to a patch antenna element, the impedance transformer further including a first port that receives the carrier signal, a second port that receives the peaking signal and a spacing between the first port and the second port that provides a phase delay.

12. The mobile device of claim 11 further comprising a substrate that includes the patch antenna element and the impedance transformer.

13. The mobile device of claim 11 wherein the phase delay is about 90 degrees.

14. The mobile device of claim 11 wherein an amount of the phase delay is based on an amount of the spacing.

15. The mobile device of claim 11 wherein the first metal region is wider than the second metal region.

16. The mobile device of claim 11 wherein the impedance transformer provides output matching to a carrier amplification stage.

17. The mobile device of claim 11 wherein the impedance transformer provides output matching to a peaking amplification stage.

18. The mobile device of claim of claim 11 wherein the phase delay provides a phase shift of about 90 degrees at a frequency of a transmit wave.

19. The mobile device of claim 11 wherein the antenna structure is formed on a substrate where a ground plan extends at least in part beneath the patch antenna element.

20. The mobile device of claim of claim 11 wherein the antenna structure is formed on a substrate where a ground plan extends at least in part beneath the patch antenna element and the impedance transformer.

Continuity (3)
Continuation 16432387 · Jun 5, 2019
Provisional Application 62685489 · Jun 15, 2018
Related Publication 20210203280A1 · Jul 1, 2021
Cited By (2)
US 12,301,171 US 12,463,732