IP Library Granted Patent US 12,646,862
Granted Patent B2
US 12,646,862 · App. 18/760,384 · Granted Jun 2, 2026

Antenna-plexer for interference cancellation

Inventors: David Richard Pehlke (Westlake Village, CA); Anand Raghavan (Middleton, WI); Poul Olesen (Stoevring, DK); Werner Schelmbauer (Steyr, AT); Thorsten Tracht (Munich, DE); Wolfgang Thomann (Munich, DE); Amir Israel Rubin (Kiryat Ono, IL); Assi Jakoby (Raanana, IL); Ofer Benjamin (Petach Tikva, IL)
Assignee: Skyworks Solutions, Inc.
H01Q21/28H04B1/04H04B1/7093H04B1/7107H04B2001/0433
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Quick Facts
Patent No.
US 12,646,862
App. No.
18/760,384
Granted
Jun 2, 2026
Kind
B2
Abstract

Antenna-plexers for interference cancellation are provided herein. In certain embodiments, a wireless device includes an antenna, an antenna-plexer coupled to the antenna and configured to generate a feedback signal, a transmitter configured to transmit a transmit signal to the antenna by way of the antenna-plexer, a receiver configured to process a receive signal, and a feedback receiver configured to process the feedback signal from the antenna-plexer to provide compensation to the receive signal.

Claims (30)

1 . A wireless device comprising:

an antenna-plexer including a first high pass section, a low pass section, and a second high pass section;

a first multi-throw switch including a first terminal connected to the low pass section and a second terminal connected to the second high pass section;

an antenna connected to both the first high pass section and the low pass section, the antenna configured to receive a first radio frequency transmit signal through the low pass section from the first terminal of the first multi-throw switch; and

a feedback receiver configured to receive a radio frequency feedback signal from the second high pass section of the antenna-plexer.

2 . The wireless device of claim 1 wherein the first multi-throw switch includes a third terminal configured to receive the first radio frequency transmit signal.

3 . The wireless device of claim 2 wherein the first multi-throw switch provides the first radio frequency transmit signal to the low pass section but not to the second highpass section in a first mode.

4 . The wireless device of claim 3 wherein the first multi-throw switch provides the first radio frequency transmit signal to both the low pass section and the second highpass section in a second mode.

5 . The wireless device of claim 2 further comprising a second multi-throw switch and a power amplifier configured to provide the first radio frequency transmit signal to the third terminal of the first multi-throw switch through the second multi-throw switch.

6 . The wireless device of claim 1 further comprising a low noise amplifier configured to receive a radio frequency receive signal from the antenna through the low pass section and the first multi-throw switch.

7 . The wireless device of claim 6 further comprising a first receiver configured to generate a first receive signal based on an amplified radio frequency receive signal from the low noise amplifier, the feedback receiver configured to compensate the first receive signal based on the radio frequency feedback signal.

8 . The wireless device of claim 7 wherein the feedback receiver compensates the first receive signal for at least one of adjacent channel leakage, harmonic interference, or intermodulation distortion.

9 . The wireless device of claim 7 further comprising a second receiver configured to generate a second receive signal, the feedback receiver further configured to compensate the second receive signal based on the radio frequency feedback signal.

10 . The wireless device of claim 1 wherein the first radio frequency transmit signal is in a low band.

11 . The wireless device of claim 10 wherein the antenna is further configured to receive a second radio frequency transmit signal in a high band through the first high pass section.

12 . The wireless device of claim 1 wherein the antenna-plexer is a triplexer.

13 . A front end system comprising:

an antenna-plexer including a first high pass section, a low pass section, and a second high pass section;

a first multi-throw switch including a first terminal connected to the low pass section and a second terminal connected to the second high pass section;

an antenna port connected to both the first high pass section and the low pass section, the antenna port configured to receive a first radio frequency transmit signal through the low pass section from the first terminal of the first multi-throw switch; and

a feedback port configured to output a radio frequency feedback signal received from the second high pass section of the antenna-plexer.

14 . The front end system of claim 13 wherein the first multi-throw switch includes a third terminal configured to receive the first radio frequency transmit signal.

15 . The front end system of claim 14 wherein the first multi-throw switch provides the first radio frequency transmit signal to the low pass section but not to the second highpass section in a first mode.

16 . The front end system of claim 15 wherein the first multi-throw switch provides the first radio frequency transmit signal to both the low pass section and the second highpass section in a second mode.

17 . The front end system of claim 14 further comprising a second multi-throw switch and a power amplifier configured to provide the first radio frequency transmit signal to the third terminal of the first multi-throw switch through the second multi-throw switch.

18 . The front end system of claim 13 further comprising a low noise amplifier configured to receive a radio frequency receive signal from the antenna through the low pass section and the first multi-throw switch.

19 . A method of feedback in a wireless device, the method comprising:

receiving a first radio frequency transmit signal at an antenna, the first radio frequency transmit signal received through a low pass section of an antenna-plexer from a first terminal of a first multi-throw switch, the antenna connected to both the low pass section and a first high pass section of the antenna-plexer; and

receiving a radio frequency feedback signal at a feedback receiver from a second high pass section of the antenna-plexer, a second terminal of the first multi-throw switch connected to the second high pass section of the antenna-plexer.

20 . The method of claim 19 further comprising receiving the first radio frequency transmit signal at a third terminal of the first multi-throw switch, using the first multi-throw switch to provide the first radio frequency transmit signal to the low pass section but not to the second highpass section in a first mode, and using the first multi-throw switch to provide the first radio frequency transmit signal to both the low pass section and the second highpass section in a second mode.

Continuity (4)
Continuation 18462727 · Sep 7, 2023
Continuation 16948544 · Sep 23, 2020
Provisional Application 62906944 · Sep 27, 2019
Related Publication 20240356242A1 · Oct 24, 2024
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