SURFACE ACOUSTIC WAVE (SAW) STRUCTURES WITH TRANSVERSE MODE SUPPRESSION
20250015776 ยท 2025-01-09
Inventors
Cpc classification
H03H9/02015
ELECTRICITY
H03H9/54
ELECTRICITY
International classification
Abstract
Surface acoustic wave (SAW) structures with transverse mode suppression are disclosed. In one aspect, the SAW structure provides digits or fingers with broad interior terminal end shapes. By providing such shapes, spurious modes above the resonance frequency of the SAW are suppressed, thereby providing desired out-of-band rejection that helps satisfy design criteria such as keeping a higher Q value, a higher K2 value, and a better Temperature Coefficient of Frequency (TCF).
Claims
1. A method of filtering a signal with a surface acoustic wave (SAW) filter, the method comprising: passing a signal into a first interdigitated electrode comprising a first plurality of fingers, each finger of the first plurality comprising a substantially uniform first width along a longitudinal axis of the finger for a first length and a second width along the longitudinal axis of the finger for a second length at a terminal end portion of the finger; exciting a piezoelectric material with the signal only through the first plurality of fingers; and receiving a filtered signal from the piezoelectric material at all fingers of a second interdigitated electrode comprising a second plurality of second fingers, each second finger of the second plurality comprising a substantially uniform third width along a second longitudinal axis of the second finger for a third length and a fourth width along the second longitudinal axis of the second finger for a fourth length at a second terminal end of the second finger, wherein each of the first plurality of fingers has a respective opposite one of the second plurality of second fingers, and each pair of first finger and second finger has a gap therebetween.
2. The method of claim 1, wherein passing the signal into the first interdigitated electrode comprises passing the signal into a first electrode that is apodized in a length direction of the SAW filter.
3. The method of claim 1, wherein passing the signal into the first interdigitated electrode comprises passing the signal into a first interdigitated electrode that is apodized with a wave pattern in a length direction of the SAW filter.
4. The method of claim 1, wherein passing the signal into the first interdigitated electrode comprises passing the signal into a first interdigitated electrode wherein the second width is greater than the substantially uniform first width but less than three times the substantially uniform first width.
5. The method of claim 1, wherein passing the signal into the first interdigitated electrode comprises passing the signal into a first interdigitated electrode wherein the second width is greater than the substantially uniform first width by less than 2.5 times the substantially uniform first width.
6. The method of claim 1, wherein passing the signal into the first interdigitated electrode comprises passing the signal into a first interdigitated electrode wherein the terminal end portion of each of the first plurality of fingers has an area corresponding to the second width multiplied by the second length and this area is less than approximately 0.72.sup., where is an interdigital transducer (IDT) period of the SAW filter.
7. The method of claim 1, wherein passing the signal into the first interdigitated electrode comprises passing the signal into a first interdigitated electrode wherein the terminal end portion of each of the fingers has an area corresponding to the second width multiplied by the second length and this area is less than approximately 0.32, where is an interdigital transducer (IDT) period of the SAW filter.
8. The method of claim 1, wherein the gap is between approximately 0.1 micrometers and 0.24, where is an interdigital transducer (IDT) period of the SAW filter.
9. The method of claim 1, wherein passing the signal into the first interdigitated electrode comprises passing the signal into a first interdigitated electrode wherein the terminal end portion comprises a rounded corner portion.
10. A surface acoustic wave (SAW) filter comprising: a first interdigitated electrode comprising a first plurality of adjacent fingers, each adjacent finger of the first plurality comprising: a substantially uniform first width along a longitudinal axis of the adjacent finger for a first length and a second width along the longitudinal axis of the adjacent finger for a second length at a terminal end portion of the adjacent finger; and a second interdigitated electrode comprising a second plurality of second adjacent fingers, each second adjacent finger of the second plurality comprising: a substantially uniform third width along a second longitudinal axis of the second adjacent finger for a third length and a fourth width along the second longitudinal axis of the second adjacent finger for a fourth length at a second terminal end of the second adjacent finger; wherein each of the first plurality of adjacent fingers has a respective opposite one of the second plurality of second adjacent fingers, and each pair of first adjacent fingers and second adjacent fingers has a gap therebetween.
11. A mobile communication device comprising: a transmitter comprising a surface acoustic wave (SAW) filter comprising: a first interdigitated electrode comprising a first plurality of adjacent fingers, each adjacent finger of the first plurality comprising: a substantially uniform first width along a longitudinal axis of the adjacent finger for a first length and a second width along the longitudinal axis of the adjacent finger for a second length at a terminal end portion of the adjacent finger; and a second interdigitated electrode comprising a second plurality of second adjacent fingers, each second adjacent finger of the second plurality comprising: a substantially uniform third width along a second longitudinal axis of the second adjacent finger for a third length and a fourth width along the second longitudinal axis of the second adjacent finger for a fourth length at a second terminal end of the second adjacent finger; wherein each of the first plurality of adjacent fingers has a respective opposite one of the second plurality of second adjacent fingers, and each pair of first adjacent fingers and second adjacent fingers has a gap therebetween.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
[0020] With reference now to the drawing figures, several exemplary aspects of the present disclosure are described. The word exemplary is used herein to mean serving as an example, instance, or illustration. Any aspect described herein as exemplary is not necessarily to be construed as preferred or advantageous over other aspects.
[0021] Aspects disclosed in the detailed description include surface acoustic wave (SAW) structures with transverse mode suppression. In particular, exemplary aspects of the present disclosure provide digits or fingers with broad interior terminal end shapes. By providing such shapes, spurious modes above the resonance frequency of the SAW structure are suppressed thereby providing desired out-of-band rejection that helps satisfy design criteria such as keeping a higher quality factor (Q) value, a higher electromechanical coupling factor (K2) value, and better Temperature Coefficient of Frequency (TCF).
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[0023] With continued reference to
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[0025] As illustrated in
[0026] Similarly, the second interdigitated electrode 304 has a plurality of fingers 314(1)-314(N) with an exemplary finger 314(X) shown in
[0027] Note that as illustrated, both the fingers 306(1)-306(N) and the fingers 314(1)-314(N) include the wider terminal end portions 312(1)-312(N), 318(1)-318(N). However, the disclosure is not so limited and only one or the other of the fingers 306(1)-306(N) or 314(1)-314(N) may include the wider terminal end portions 312(1)-312(N), 318(1)-318(N). Note further, that as illustrated, the widths W1 of the fingers 306(1)-306(N) are the same as the widths W1 of the fingers 314(1)-314(N), but such identity is not required by the present disclosure and the W1 of fingers 306(1)-306(N) may differ from the W1 of the fingers 314(1)-314(N). Still further, even if both fingers 306(1)-306(N) and 314(1)-314(N) have the wider terminal end portions 312(1)-312(N), 318(1)-318(N), they do not necessarily have to have the same widths W2 relative to each other.
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[0029] There are a number of parameters associated with the finger ends that may be optimized to achieve desired transverse mode suppression.
[0030] In this regard,
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[0032] Similarly, a gap 600 illustrated in
[0033] Still another parameter may be a crossing width 700 illustrated in
[0034] While
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[0036] Still another possible variation is to chirp the wave apodization as illustrated in
[0037] The surface acoustic wave structures with transverse mode suppression according to aspects disclosed herein may be provided in or integrated into any processor-based device. Examples, without limitation, include a set top box, an entertainment unit, a navigation device, a communications device, a fixed location data unit, a mobile location data unit, a global positioning system (GPS) device, a mobile phone, a cellular phone, a smart phone, a session initiation protocol (SIP) phone, a tablet, a phablet, a server, a computer, a portable computer, a mobile computing device, a wearable computing device (e.g., a smartwatch, a health or fitness tracker, eyewear, etc.), a desktop computer, a personal digital assistant (PDA), a monitor, a computer monitor, a television, a tuner, a radio, a satellite radio, a music player, a digital music player, a portable music player, a digital video player, a video player, a digital video disc (DVD) player, a portable digital video player, an automobile, a vehicle component, avionics systems, a drone, and a multicopter.
[0038] The previous description of the disclosure is provided to enable any person skilled in the art to make or use the disclosure. Various modifications to the disclosure will be readily apparent to those skilled in the art, and the generic principles defined herein may be applied to other variations. Thus, the disclosure is not intended to be limited to the examples and designs described herein but is to be accorded the widest scope consistent with the principles and novel features disclosed herein.