IP Library › Granted Patent US 11,843,367
Granted Patent B2
US 11,843,367 · App. 16/984,158 · Granted Dec 12, 2023

Filter device, radio-frequency front-end circuit, and communication apparatus

Inventor: Koji Nosaka (Nagaokakyo, JP)
Assignee: MURATA MANUFACTURING CO., LTD.
H03H9/6406H03H9/58H03H9/6433H03H9/6489H03H9/68H03H9/703H03H9/725H04B1/04H04B1/16
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Quick Facts
Patent No.
US 11,843,367
App. No.
16/984,158
Granted
Dec 12, 2023
Kind
B2
Abstract

A filter device according to an embodiment of the present disclosure includes a first filter and a second filter that are connected in parallel between a first terminal and a second terminal. The first filter includes multiple series arm resonators. The series arm resonators are disposed in series in a path from the first terminal via the first filter to the second terminal. The series arm resonators include a first series arm resonator and a second series arm resonator. Under a condition that a value obtained by dividing a difference between an antiresonance frequency and a resonance frequency of each series arm resonator by the resonance frequency is defined as a fractional bandwidth, a first fractional bandwidth of the first series arm resonator is different from a second fractional bandwidth of the second series arm resonator.

Claims (83)

1. A filter device having a first passband, the filter device comprising:

a first filter and a second filter connected in parallel with each other between a first terminal and a second terminal, wherein

the first passband of the filter device includes at least part of a second passband of the first filter and at least part of a third passband of the second filter,

the second passband and the third passband being narrower than the first passband of the filter device,

the third passband having a center frequency higher than a center frequency of the second passband,

the first filter includes a plurality of series arm resonators connected in series with each other in a path from the first terminal via the first filter to the second terminal,

the plurality of series arm resonators include a first series arm resonator and a second series arm resonator, and

under a condition that a value obtained by dividing a difference between an antiresonance frequency and a resonance frequency of each series arm resonator by the resonance frequency is defined as a fractional bandwidth, a first fractional bandwidth of the first series arm resonator is different from a second fractional bandwidth of the second series arm resonator.

2. The filter device according to claim 1 , wherein

the plurality of series arm resonators further include a third series arm resonator,

in the path from the first terminal via the first filter to the second terminal, the plurality of series arm resonators are connected in series with each other with the first series arm resonator and the third series arm resonator located at opposite ends, and

the third series arm resonator has a third fractional bandwidth different from the second fractional bandwidth.

3. The filter device according to claim 2 , wherein

the first fractional bandwidth is larger than the second fractional bandwidth, and

the third fractional bandwidth is larger than the second fractional bandwidth.

4. The filter device according to claim 2 , wherein at least one of a capacitance of the first series arm resonator and a capacitance of the third series arm resonator is smaller than a capacitance of the second series arm resonator.

5. The filter device according to claim 3 , wherein at least one of a capacitance of the first series arm resonator and a capacitance of the third series arm resonator is smaller than a capacitance of the second series arm resonator.

6. The filter device according to claim 2 , wherein each of the first series arm resonator, the second series arm resonator, and the third series arm resonator includes at least one elastic wave resonator, and at least one of the first series arm resonator and the third series arm resonator includes more elastic wave resonators than the second series arm resonator.

7. The filter device according to claim 3 , wherein each of the first series arm resonator, the second series arm resonator, and the third series arm resonator includes at least one elastic wave resonator, and at least one of the first series arm resonator and the third series arm resonator includes more elastic wave resonators than the second series arm resonator.

8. The filter device according to claim 4 , wherein each of the first series arm resonator, the second series arm resonator, and the third series arm resonator includes at least one elastic wave resonator, and at least one of the first series arm resonator and the third series arm resonator includes more elastic wave resonators than the second series arm resonator.

9. The filter device according to claim 5 , wherein each of the first series arm resonator, the second series arm resonator, and the third series arm resonator includes at least one elastic wave resonator, and at least one of the first series arm resonator and the third series arm resonator includes more elastic wave resonators than the second series arm resonator.

10. The filter device according to claim 1 , further comprising:

a first switch, a second switch, a third switch, and a fourth switch, wherein

the first switch, the first filter, and the second switch are connected in series with each other in this order between the first terminal and the second terminal,

the third switch, the second filter, and the fourth switch are connected in series with each other in this order between the first terminal and the second terminal, and

between the first terminal and the second terminal, the first switch, the first filter, and the second switch which are connected in series are connected in parallel with the third switch, the second filter, and the fourth switch which are connected in series.

11. The filter device according to claim 1 , further comprising:

a first switch and a second switch, wherein

the second filter and the first switch are connected in series with each other in this order between the first terminal and the second terminal,

between the first terminal and the second terminal, the first filter is connected in parallel with the second filter and the first switch which are connected in series,

the second switch is connected between a third terminal and a third connecting node between the second filter and the first switch, and

the second passband and the third passband do not overlap each other.

12. The filter device according to claim 1 , further comprising:

a first switch and a second switch, wherein

the first filter and the first switch are connected in series with each other in this order between the first terminal and a third terminal,

between the first terminal and the third terminal, the second filter is connected in parallel with the first filter and the first switch which are connected in series,

the second switch is connected between the second terminal and a third connecting node between the first filter and the first switch, and

the second passband and the third passband do not overlap each other.

13. A filter device having a first passband, the filter device comprising:

a first filter and a second filter connected in parallel with each other between a first terminal and a second terminal, wherein

the first passband of the filter device includes at least part of a second passband of the first filter and at least part of a third passband of the second filter,

the second passband and the third passband being narrower than the first passband of the filter device,

the third passband having a center frequency higher than a center frequency of the second passband,

the second filter includes

a first parallel arm resonator connected between a grounding node and a first connecting node on a path from the first terminal via the second filter to the second terminal, and

a second parallel arm resonator connected between the grounding node and a second connecting node on the path from the first terminal via the second filter to the second terminal, the second connecting node being different from the first connecting node, and

under a condition that a value obtained by dividing a difference between an antiresonance frequency and a resonance frequency of each parallel arm resonator by the resonance frequency is defined as a fractional bandwidth, a fractional bandwidth of the first parallel arm resonator is different from a fractional bandwidth of the second parallel arm resonator.

14. The filter device according to claim 13 , wherein

the second filter includes

a filter circuit including the first parallel arm resonator and the second parallel arm resonator,

a first phase shifter disposed in a path between the filter circuit and the first terminal, and

a second phase shifter disposed in a path between the filter circuit and the second terminal, and

the first phase shifter and the second phase shifter are configured to increase an impedance of the second filter in the second passband.

15. The filter device according to claim 13 , further comprising:

a first switch, a second switch, a third switch, and a fourth switch, wherein

the first switch, the first filter, and the second switch are connected in series with each other in this order between the first terminal and the second terminal,

the third switch, the second filter, and the fourth switch are connected in series with each other in this order between the first terminal and the second terminal, and

between the first terminal and the second terminal, the first switch, the first filter, and the second switch which are connected in series are connected in parallel with the third switch, the second filter, and the fourth switch which are connected in series.

16. The filter device according to claim 13 , further comprising:

a first switch and a second switch, wherein

the second filter and the first switch are connected in series with each other in this order between the first terminal and the second terminal,

between the first terminal and the second terminal, the first filter is connected in parallel with the second filter and the first switch which are connected in series,

the second switch is connected between a third terminal and a third connecting node between the second filter and the first switch, and

the second passband and the third passband do not overlap each other.

17. The filter device according to claim 13 , further comprising:

a first switch and a second switch, wherein

the first filter and the first switch are connected in series with each other in this order between the first terminal and a third terminal,

between the first terminal and the third terminal, the second filter is connected in parallel with the first filter and the first switch which are connected in series,

the second switch is connected between the second terminal and a third connecting node between the first filter and the first switch, and

the second passband and the third passband do not overlap each other.

18. A radio-frequency front-end circuit comprising:

a filter device having a passband, the filter device having

a first filter and a second filter connected in parallel with each other between a first terminal and a second terminal, wherein

the passband of the filter device includes at least part of a second passband of the first filter and at least part of a third passband of the second filter,

the second passband and the third passband being narrower than the passband of the filter device,

the third passband having a center frequency higher than a center frequency of the second passband,

the first filter includes a plurality of series arm resonators connected in series with each other in a path from the first terminal via the first filter to the second terminal,

the plurality of series arm resonators include a first series arm resonator and a second series arm resonator, and

under a condition that a value obtained by dividing a difference between an antiresonance frequency and a resonance frequency of each series arm resonator by the resonance frequency is defined as a fractional bandwidth, a first fractional bandwidth of the first series arm resonator is different from a second fractional bandwidth of the second series arm resonator; and

an amplifier circuit electrically connected to the filter device.

19. A communication apparatus comprising:

a radio-frequency (RF) signal processing circuit that processes a radio-frequency signal transmitted and received by an antenna element; and

a RF front-end circuit according to claim 18 that transmits the radio-frequency signal between the antenna element and the RF signal processing circuit.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 4, 2021
From: NOSAKA, KOJI
To: MURATA MANUFACTURING CO., LTD.
Reel/Frame 054794/0521 →
Priority Claims (1)
JP 2018-018284 · Feb 5, 2018 · national
Continuity (2)
Continuation PCTJP2018041280 · Nov 7, 2018
Related Publication 20200366272A1 · Nov 19, 2020
Cited By (1)
US 12,732,161