IP Library Granted Patent US 10,298,196
Granted Patent B2
US 10,298,196 · App. 15/141,283 · Granted May 21, 2019

RF filtering circuitry

Inventors: Dirk Robert Walter Leipold (San Jose, CA); George Maxim (Saratoga, CA); Marcus Granger-Jones (Scotts Valley, CA); Baker Scott (San Jose, CA)
Assignee: Qorvo US, Inc.
H03H7/1775H03H7/0115H03H7/0161H03H7/09H03H2007/013
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Quick Facts
Patent No.
US 10,298,196
App. No.
15/141,283
Granted
May 21, 2019
Kind
B2
Abstract

Embodiments of radio frequency (RF) filtering circuitry are disclosed. In one embodiment, the RF filtering circuitry includes a first port, a second port, a first RF filter path, and a second RF filter path. The first RF filter path is connected between the first port and the second port and includes at least a pair of weakly coupled resonators. The weakly coupled resonators are configured such that a first transfer response between the first port and the second port defines a first passband. The second RF filter path is coupled to the first RF filter path and is configured such that the first transfer response between the first port and the second port defines a stopband adjacent to the first passband without substantially increasing ripple variation of the first passband defined by the first transfer response.

Claims (29)

1. Radio frequency (RF) filtering circuitry comprising:

a first port;

a second port;

a first RF filter path connected between the first port and the second port, wherein the first RF filter path comprises:

at least a pair of weakly coupled resonators that are configured such that a first transfer response between the first port and the second port defines a first passband; and

a first capacitive element coupled between the first port and the pair of weakly coupled resonators; and

a second RF filter path coupled to the first RF filter path, comprising a second capacitive element coupled between the first port and a parallel resonator, a second capacitance of the second capacitive element being at least one order of magnitude smaller than a first capacitance of the first capacitive element;

wherein the second RF filter path is configured such that the first transfer response between the first port and the second port defines a stopband adjacent to the first passband without substantially increasing ripple variation of the first passband defined by the first transfer response.

2. The RF filtering circuitry of claim 1 wherein the second RF filter path is configured to reduce flyback of the first transfer response in the stopband.

3. The RF filtering circuitry of claim 1 wherein the second RF filter path is configured so that the stopband increases roll-off of the first transfer response in the first passband.

4. The RF filtering circuitry of claim 1 wherein the second RF filter path is configured so that the stopband increases a shape factor of the first transfer response in the first passband.

5. The RF filtering circuitry of claim 1 wherein the second RF filter path is connected between the first port and the second port so that the second RF filter path is in parallel with respect to the first RF filter path.

6. The RF filtering circuitry of claim 5 wherein the second RF filter path is configured to dissipate RF signals within the stopband of the first transfer response.

7. The RF filtering circuitry of claim 1 , wherein a first resonator of the pair of weakly coupled resonators comprises a variable capacitance for tuning the first passband.

8. Radio frequency (RF) filtering circuitry comprising:

a first port;

a second port;

a third port;

a first RF filter path connected between the first port and the second port, wherein the first RF filter path comprises at least a pair of weakly coupled resonators that are configured such that a first transfer response between the first port and the second port defines a first passband; and

a second RF filter path coupled to the first RF filter path and connected between the first RF filter path and the third port;

wherein:

the second RF filter path is configured such that the first transfer response between the first port and the second port defines a stopband adjacent to the first passband without substantially increasing ripple variation of the first passband defined by the first transfer response;

the second RF filter path is configured to provide a second passband defined by a second transfer response between the first port and the third port; and

the second passband defined by the second transfer response is adjacent to the first passband defined by the first transfer response such that the second passband of the second transfer response creates the stopband defined by the first transfer response.

9. The RF filtering circuitry of claim 8 wherein the second RF filter path is configured to reduce flyback of the first transfer response in the stopband.

10. The RF filtering circuitry of claim 8 wherein the second RF filter path is configured so that the stopband increases roll-off of the first transfer response in the first passband.

11. The RF filtering circuitry of claim 8 wherein the second RF filter path is configured so that the stopband increases a shape factor of the first transfer response in the first passband.

12. The RF filtering circuitry of claim 8 wherein the second RF filter path is connected between the first port and the second port so that the second RF filter path is in parallel with respect to the first RF filter path.

13. The RF filtering circuitry of claim 12 wherein the second RF filter path is configured to dissipate RF signals within the stopband of the first transfer response.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 11, 2019
From: LEIPOLD, DIRK ROBERT WALTER; MAXIM, GEORGE; GRANGER-JONES, MARCUS; SCOTT, BAKER
To: RF MICRO DEVICES, INC.
Reel/Frame 048298/0820 →
MERGER Recorded Feb 11, 2019
From: RF MICRO DEVICES, INC.
To: QORVO US, INC.
Reel/Frame 048298/0946 →
Continuity (2)
Provisional Application 62197664 · Jul 28, 2015
Related Publication 20170033760A1 · Feb 2, 2017