IP Library Granted Patent US 10,985,796
Granted Patent B2
US 10,985,796 · App. 16/929,205 · Granted Apr 20, 2021

Methods and apparatus for enhanced tranceiver performance using differential filtering

Inventor: David Richard Pehlke (Westlake Village, CA)
Assignee: SKYWORKS SOLUTIONS, INC.
H04B1/50
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Quick Facts
Patent No.
US 10,985,796
App. No.
16/929,205
Granted
Apr 20, 2021
Kind
B2
Abstract

Noise cancellation techniques based on differential filtering, and front-end modules and wireless devices incorporating same. An example of a front-end module includes transmit, receive, and antenna contacts, and a duplexer including a first transmit filter connected in a transmit path between the transmit contact and the antenna contact, and a first receive filter connected in a receive path between the antenna contact and the receive contact, the first transmit filter having a differential input. In one example, the front-end module includes a power amplifier module connected in the transmit path and configured to supply a differential transmit output on first and second differential signal lines connected to the differential input of the first transmit filter, and a first bandpass filter connected between the first and second differential signal lines and configured to provide a first frequency-specific short between the first and second differential signal lines.

Claims (37)

1. A front-end module comprising:

a transmit contact, a receive contact, and an antenna contact;

a duplexer including a first transmit filter connected in a transmit path between the transmit contact and the antenna contact, and a first receive filter connected in a receive path between the antenna contact and the receive contact, the first transmit filter having a differential input;

a power amplifier module connected in the transmit path between the transmit contact and the first transmit filter, the power amplifier module being configured to supply a differential transmit output on first and second differential signal lines connected to the differential input of the first transmit filter; and

a first bandpass filter connected between the first and second differential signal lines and configured to provide a first frequency-specific short between the first and second differential signal lines.

2. The front-end module of claim 1 wherein the first bandpass filter has a passband overlapping in frequency with a passband of the first receive filter.

3. The front-end module of claim 2 wherein the power amplifier includes a first power amplifier stage and a differential power amplifier stage, the front end-module further comprising:

a second transmit filter connected in the transmit path between the first power amplifier stage and the differential power amplifier stage, the second transmit filter being configured to convert a single-ended output from the first power amplifier stage into a differential input to the differential power amplifier stage, the differential power amplifier stage being configured to supply the differential transmit output on the first and second differential signal lines.

4. The front-end module of claim 3 wherein the second transmit filter is a surface acoustic wave filter.

5. The front-end module of claim 2 further comprising:

a second receive filter connected in the receive path between the first receive filter and the receive contact, the first receive filter being configured to supply a differential receive output on third and fourth differential signal lines connected to a differential input of the second receive filter; and

a second bandpass filter connected between the third and fourth differential signal lines and configured to provide a second frequency-specific short between the third and fourth differential signal lines.

6. The front-end module of claim 5 wherein the second bandpass filter has a passband overlapping in frequency with a passband of the first transmit filter.

7. The front-end module of claim 6 further comprising a low noise amplifier module connected in the receive path between the second receive filter and the receive contact.

8. The front-end module of claim 7 wherein the second receive filter is configured to convert the differential receive output to a single-ended input into the low noise amplifier module.

9. The front-end module of claim 8 wherein the second receive filter is a surface acoustic wave filter.

10. A front-end module comprising:

a transmit contact, a receive contact, and an antenna contact;

a duplexer including a first transmit filter connected in a transmit path between the transmit contact and the antenna contact and a first receive filter connected in a receive path between the antenna contact and the receive contact, the first receive filter configured to provide a differential receive output on first and second differential signal lines;

a second receive filter having a differential input connected to the first and second differential signal lines; and

a first bandpass filter connected between the first and second differential signal lines and configured to provide a first frequency-specific short between the first and second differential signal lines.

11. The front-end module of claim 10 wherein the first bandpass filter has a passband overlapping in frequency with a passband of the first transmit filter.

12. The front-end module of claim 10 further comprising a low noise amplifier module connected in the receive path between the second receive filter and the receive contact.

13. The front-end module of claim 12 wherein the second receive filter is configured to convert the differential receive output into a single-ended input into the low noise amplifier module.

14. The front-end module of claim 10 wherein the first transmit filter has a differential input, the front-end module further comprising:

a power amplifier module connected in the transmit path between the transmit contact and the first transmit filter, the power amplifier module being configured to supply a differential transmit output on third and fourth differential signal lines connected to the differential input of the first transmit filter; and

a second bandpass filter connected between the third and fourth differential signal lines and configured to provide a second frequency-specific short between the third and fourth differential signal lines.

15. The front-end module of claim 14 wherein at least one of the first bandpass filter and the second bandpass filter includes at least one bulk acoustic wave device or at least one film bulk acoustic resonator device.

16. The front-end module of claim 14 wherein the second bandpass filter has a passband overlapping in frequency with a passband of the first receive filter.

17. The front-end module of claim 16 wherein the power amplifier includes a first power amplifier stage and a differential power amplifier stage, the front end-module further comprising:

a second transmit filter connected in the transmit path between the first power amplifier stage and the differential power amplifier stage, the second transmit filter being configured to convert a single-ended output from the first power amplifier stage into a differential input to the differential power amplifier stage, the differential power amplifier stage being configured to supply the differential transmit output on the third and fourth differential signal lines.

18. The front-end module of claim 10 wherein the first transmit filter has a differential input, the front-end module further comprising:

a second transmit filter connected in the transmit path between the transmit contact and the first transmit filter, the second transmit filter being configured to provide a differential transmit output on third and fourth differential signal lines connected to the differential input of the first transmit filter; and

a second bandpass filter connected between the third and fourth differential signal lines and configured to provide a second frequency-specific short between the third and fourth differential signal lines.

19. The front-end module of claim 18 wherein the second bandpass filter has a passband overlapping in frequency with a passband of the first receive filter.

20. The front-end module of claim 18 further comprising a power amplifier module connected in the transmit path between the transmit contact and the second transmit filter.

21. The front-end module of claim 20 wherein the second transmit filter is configured to convert a single-ended output from the power amplifier module into the differential transmit output.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 4, 2021
From: PEHLKE, DAVID RICHARD
To: SKYWORKS SOLUTIONS, INC.
Reel/Frame 054796/0506 →
Continuity (2)
Provisional Application 62878825 · Jul 26, 2019
Related Publication 20210028813A1 · Jan 28, 2021
Cited By (2)
US 12,526,751 US 12,676,641