IP Library Granted Patent US 12,470,194
Granted Patent B2
US 12,470,194 · App. 18/368,851 · Granted Nov 11, 2025

Parallel hybrid acoustic passive filter

Inventors: Hai H. Ta (San Diego, CA); Bo Pan (Irvine, CA); Weimin Sun (Santa Rosa Valley, CA)
Assignee: Skyworks Solutions, Inc.
H03H7/463H01Q1/50H03H7/0115H03H7/0138H03H7/1758H03H7/1766H03H9/02007H03H9/205H03H9/542H03H9/605H03H9/64H03H9/706H03H9/725H04B1/0475H04B1/1036H04B1/40H04L5/1461
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Quick Facts
Patent No.
US 12,470,194
App. No.
18/368,851
Granted
Nov 11, 2025
Kind
B2
Abstract

Aspects of this disclosure relate to a parallel hybrid acoustic passive filter. The parallel hybrid acoustic passive filter includes a first sub-filter and a second sub-filter. The first sub-filter includes a first acoustic resonator and a first non-acoustic passive component. The second sub-filter includes a second acoustic resonator and second first non-acoustic passive component. The first sub-filter and the second sub-filter are together arranged to filter a radio frequency signal. The parallel hybrid acoustic filter can be a band pass filter or a band stop filter, for example. Related multiplexers, wireless communication devices, and methods are disclosed.

Claims (28)

1 . A multiplexer with a parallel hybrid acoustic passive filter, the multiplexer comprising:

a first filter configured to filter a radio frequency signal, the first filter including a first sub-filter in parallel with a second sub-filter at an input common node and an output common node, the first sub-filter including at least a first shunt circuit and a second shunt circuit connected in parallel with each other, the first shunt circuit having at least a first shunt passive component with an acoustic resonator, the second shunt circuit having a second shunt passive component without an acoustic resonator, and the second sub-filter including a third shunt circuit and a fourth shunt circuit in parallel with each other, and at least one capacitor in parallel with the third and fourth shunt circuits;

a third shunt passive component connected to the input common node and a fourth shunt passive component connected to the output common node;

a first series passive component connected in series to the input common node; and

a second filter coupled to the first and second common nodes.

2 . The multiplexer of claim 1 wherein the first filter is a band pass filter.

3 . The multiplexer of claim 2 wherein a frequency response of the first filter has a first sub-passband corresponding to the first sub-filter, a second sub-passband corresponding to the second sub-filter, and a notch at a notch frequency between the first sub-passband and a second sub-passband.

4 . The multiplexer of claim 2 wherein the second filter is a band stop filter.

5 . The multiplexer of claim 1 wherein the acoustic resonator is a bulk acoustic wave resonator.

6 . The multiplexer of claim 1 wherein the second sub-filter includes a fifth shunt circuit having an acoustic resonator.

7 . The multiplexer of claim 1 wherein the first filter has a first passband, the second filter has a second passband, the first passband having a lower edge that is at a higher frequency than an upper edge of the second passband.

8 . The multiplexer of claim 1 further comprising a third filter coupled to at least one of the first and second common nodes.

9 . The multiplexer of claim 1 wherein the first sub-filter includes a series acoustic resonator in series with the first shunt circuit.

10 . The multiplexer of claim 1 wherein the second filter is a high pass filter.

11 . A parallel hybrid acoustic passive filter comprising:

a first sub-filter including at least a first shunt circuit and a second shunt circuit connected in parallel with each other, the first shunt circuit having at least a first shunt passive component with an acoustic resonator, the second shunt circuit having a second shunt passive component without an acoustic resonator;

a second sub-filter coupled in parallel with the first sub-filter at in input common node and an output common node, the second sub-filter including a third shunt circuit and a fourth shunt circuit in parallel with each other, and at least one capacitor in parallel with the third and fourth shunt circuits;

a third shunt passive component connected to the input common node and a fourth shunt passive component connected to the output common node; and

a series passive component connected in series to the input common node.

12 . The parallel hybrid acoustic passive filter of claim 11 wherein the first sub-filter and the second sub-filter are together arranged as a band pass filter having a passband.

13 . The parallel hybrid acoustic passive filter of claim 11 wherein a frequency response of the parallel hybrid acoustic passive filter has a first sub-passband corresponding to the first sub-filter, a second sub-passband corresponding to the second sub-filter, and at least one notch at a notch frequency between the first sub-passband and a second sub-passband.

14 . The parallel hybrid acoustic passive filter of claim 11 wherein the first sub-filter and the second sub-filter are together arranged as a band stop filter having a stop band.

15 . The parallel hybrid acoustic passive filter of claim 11 wherein the acoustic resonator is a bulk acoustic wave resonator.

16 . The parallel hybrid acoustic passive filter of claim 11 wherein the first sub-filter includes a series acoustic resonator in series with the first shunt circuit, the series acoustic resonator in parallel with a passive component.

17 . The parallel hybrid acoustic passive filter of claim 11 wherein the first sub-filter further includes a third shunt acoustic resonator.

18 . The parallel hybrid acoustic passive filter of claim 11 wherein the second shunt inductor is part of an integrated passive device.

19 . The parallel hybrid acoustic passive filter of claim 11 wherein the first sub-filter and the second sub-filter have different passbands.

20 . The parallel hybrid acoustic passive filter of claim 11 wherein a lower bound of a passband of the parallel hybrid acoustic passive filter is at least 2 gigahertz.

Continuity (5)
Continuation 16514810 · Jul 17, 2019
Provisional Application 62700146 · Jul 18, 2018
Provisional Application 62700142 · Jul 18, 2018
Provisional Application 62700148 · Jul 18, 2018
Related Publication 20240088862A1 · Mar 14, 2024
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