IP Library Granted Patent US 10,541,713
Granted Patent B2
US 10,541,713 · App. 15/196,006 · Granted Jan 21, 2020

Multiplexers having hybrid circuits with resonators

Inventors: Jianxing Ni (San Jose, CA); Joshua James Caron (Madison, NC); Srivatsan Jayaraman (Santa Clara, CA); Reza Kasnavi (Solana Beach, CA); John G. Freed (Raleigh, NC)
Assignee: Skyworks Solutions, Inc.
H04B1/18H03H7/463H03H9/706H03H9/725H04B1/0057H04B1/3827
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Quick Facts
Patent No.
US 10,541,713
App. No.
15/196,006
Granted
Jan 21, 2020
Kind
B2
Abstract

Multiplexers having hybrid circuits with resonators. In some embodiments, a multiplexer for processing radio-frequency signals can include a plurality of nodes, a common node, and a signal path implemented between each of the plurality of nodes and the common node. Each signal path can include a filter, and each of at least some of the signal paths can further include a resonator coupled with the corresponding filter. A signal path with the resonator provides a sharper notch profile for a radio-frequency signal than a signal path without the resonator.

Claims (27)

1. A multiplexer for processing radio-frequency signals, comprising:

a plurality of nodes;

a common node; and

a signal path implemented between each of the plurality of nodes and the common node, each corresponding signal path including a filter and a respective resonator, the plurality of corresponding signal paths configured to support carrier aggregation of respective signals through the common node.

2. The multiplexer of claim 1 wherein each corresponding signal path provides a sharper notch profile for the respective signal than each corresponding signal path would provide without the respective resonator.

3. The multiplexer of claim 2 wherein the plurality of nodes correspond to a plurality of respective input nodes, and the common node corresponds to an output node.

4. The multiplexer of claim 3 wherein the multiplexer is a diplexer such that two input nodes are coupled to the common output node through their corresponding signal paths.

5. The multiplexer of claim 3 wherein the multiplexer is a triplexer such that three input nodes are coupled to the common output node through their corresponding signal paths.

6. The multiplexer of claim 3 wherein the multiplexer is a quadplexer such that four input nodes are coupled to the common output node through their corresponding signal paths.

7. The multiplexer of claim 3 further comprising an additional signal path implemented between an additional input node and the common output node, and having a filter but not a resonator.

8. The multiplexer of claim 7 wherein the corresponding signal paths having the respective resonators are configured to process signals having frequencies that are higher than a frequency range associated with the additional signal path.

9. The multiplexer of claim 3 wherein the respective resonator and the filter are connected in series in the corresponding signal path.

10. The multiplexer of claim 9 wherein the respective resonator is implemented upstream of the filter.

11. The multiplexer of claim 9 wherein the respective resonator is implemented downstream of the filter.

12. The multiplexer of claim 9 wherein the corresponding signal path further includes an additional respective resonator.

13. The multiplexer of claim 12 wherein the filter is implemented between the two respective resonators.

14. The multiplexer of claim 3 wherein each respective resonator has a Q-factor value that is higher than the corresponding filter's Q-factor value.

15. The multiplexer of claim 14 wherein each filter is a band-pass filter.

16. The multiplexer of claim 15 wherein each respective resonator is a surface acoustic wave resonator.

17. The multiplexer of claim 15 wherein each respective resonator is a bulk acoustic wave resonator or a resonator having a high Q-factor value.

18. A radio-frequency module comprising:

a packaging substrate configured to receive a plurality of components; and

a multiplexer implemented relative to the packaging substrate, the multiplexer including a plurality of nodes and a common node, and a signal path implemented between each of the plurality of nodes and the common node, each corresponding signal path including a filter and a respective resonator, the plurality of corresponding signal paths configured to support carrier aggregation of respective signals through the common node.

19. A wireless device comprising:

a receiver;

a radio-frequency module in communication with the receiver, the radio-frequency module including a multiplexer having a plurality of nodes and a common node, the multiplexer further including a signal path implemented between each of the plurality of nodes and the common node, each corresponding signal path including a filter and a respective resonator, the plurality of corresponding signal paths configured to support carrier aggregation of respective signals through the common node; and

an antenna in communication with the radio-frequency module, and configured to receive the respective signals.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 5, 2017
From: NI, JIANXING; CARON, JOSHUA JAMES; JAYARAMAN, SRIVATSAN; KASNAVI, REZA; FREED, JOHN G.
To: SKYWORKS SOLUTIONS, INC.
Reel/Frame 041174/0521 →
Continuity (2)
Provisional Application 62186348 · Jun 29, 2015
Related Publication 20160380608A1 · Dec 29, 2016
Cited By (4)
US 12,451,917 US 12,603,634 US 12,609,670 US 12,738,924