Acoustic wave device and acoustic wave module including same
11134344 · 2021-09-28
Assignee
Inventors
Cpc classification
H04R17/10
ELECTRICITY
H04R1/025
ELECTRICITY
H04R2400/11
ELECTRICITY
H03H9/25
ELECTRICITY
H04R2499/11
ELECTRICITY
International classification
H04R17/00
ELECTRICITY
Abstract
An acoustic wave device includes a cover portion, an outer support layer, a support portion, a piezoelectric substrate, and functional elements on the piezoelectric substrate. The outer support layer is on the piezoelectric substrate around a region where the functional elements are disposed. The cover portion is opposed to the piezoelectric substrate with the outer support layer interposed therebetween. The support portion is in a hollow space defined by the piezoelectric substrate, the outer support layer, and the cover portion. The height of the support portion is smaller than that of the outer support layer and larger than that of each of the functional elements. A gap is provided between the support portion and the cover portion or between the support portion and the piezoelectric substrate.
Claims
1. An acoustic wave device comprising: a piezoelectric substrate; a plurality of functional elements on the piezoelectric substrate; an outer support layer on the piezoelectric substrate around a region where the plurality of functional elements are disposed; a cover portion opposed to the piezoelectric substrate with the outer support layer interposed therebetween; and a support portion in a hollow space defined by the piezoelectric substrate, the outer support layer, and the cover portion; wherein a height of the support portion is smaller than that of the outer support layer and larger than that of each of the plurality of functional elements; and a gap is provided between the support portion and the cover portion or between the support portion and the piezoelectric substrate.
2. The acoustic wave device according to claim 1, wherein the support portion is on the piezoelectric substrate.
3. The acoustic wave device according to claim 1, wherein the support portion is in contact with the cover portion.
4. The acoustic wave device according to claim 1, wherein the support portion is made of resin.
5. The acoustic wave device according to claim 2, wherein the plurality of functional elements include a first functional element and a second functional element; the acoustic wave device further includes a wiring pattern disposed on the piezoelectric substrate and electrically connecting the first functional element and the second functional element; and the wiring pattern defines the support portion.
6. The acoustic wave device according to claim 2, wherein the plurality of functional elements include a first functional element and a second functional element; the acoustic wave device further includes a wiring pattern disposed on the piezoelectric substrate and electrically connecting the first functional element and the second functional element; and the wiring pattern and resin disposed on the wiring pattern define the support portion.
7. The acoustic wave device according to claim 1, wherein at least a portion of the plurality of functional elements include an interdigital transducer (IDT) electrode, and the piezoelectric substrate and the IDT electrode define a surface-acoustic-wave resonator.
8. An acoustic wave device comprising: a piezoelectric substrate; a plurality of functional elements on the piezoelectric substrate; an outer support layer on the piezoelectric substrate around a region where the plurality of functional elements are disposed; a cover portion opposed to the piezoelectric substrate with the outer support layer interposed therebetween; and a support portion in a hollow space defined by the outer support layer and the cover portion; wherein a height of at least a portion of the support portion is smaller than that of the outer support layer and larger than that of each of the plurality of functional elements; and a gap is provided between the support portion and the cover portion or between the support portion and the piezoelectric substrate.
9. The acoustic wave device according to claim 8, wherein at least a portion of the plurality of functional elements include an interdigital transducer (IDT) electrode, and the piezoelectric substrate and the IDT electrode define a surface-acoustic-wave resonator.
10. The acoustic wave device according to claim 8, wherein the support portion is on the piezoelectric substrate.
11. The acoustic wave device according to claim 8, wherein the support portion is in contact with the cover portion.
12. The acoustic wave device according to claim 8, wherein the support portion is made of resin.
13. An acoustic wave module comprising: the acoustic wave device according to claim 1; and a mounting substrate on which the acoustic wave device is mounted.
14. The acoustic wave module according to claim 13, wherein the support portion is on the piezoelectric substrate.
15. The acoustic wave module according to claim 13, wherein the support portion is in contact with the cover portion.
16. The acoustic wave device according to claim 13, wherein the support portion is made of resin.
17. An acoustic wave module comprising: the acoustic wave device according to claim 8; and a mounting substrate on which the acoustic wave device is mounted.
18. The acoustic wave module according to claim 17, wherein the support portion is on the piezoelectric substrate.
19. The acoustic wave module according to claim 17, wherein the support portion is in contact with the cover portion.
20. The acoustic wave device according to claim 17, wherein the support portion is made of resin.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
(8) Preferred embodiments of the present invention will be described in detail below with reference to the drawings. The same or corresponding portions in the drawings have the same reference numerals, and the description thereof is not repeated.
First Preferred Embodiment
(9)
(10) Referring to
(11) An example of the piezoelectric substrate 30 may preferably be made of, for example, a piezoelectric monocrystalline material, such as lithium tantalate (LiTaO.sub.3), lithium niobate (LiNbO.sub.3), aluminum oxide, silicon (Si), or sapphire, or a piezoelectric multilayer material including LiTaO.sub.3 or LiNbO.sub.3. The plurality of functional elements 40 are provided on a first surface 32 of the piezoelectric substrate 30. The functional elements 40 may preferably include a pair of IDT electrodes made by, for example, using an electrode material of an elemental metal of at least one of aluminum, copper, silver, gold, titanium, tungsten, platinum, chromium, nickel, and molybdenum or of an alloy mainly including any of the above-described metals. The piezoelectric substrate 30 and IDT electrodes define a surface-acoustic-wave resonator.
(12) The outer support layer 20 preferably made of resin, for example, is disposed on a portion extending along the outer area of the first surface 32 of the piezoelectric substrate 30. The cover portion 10 is opposed to the first surface 32, on which the functional elements 40 are provided, with the outer support layer 20 interposed therebetween, and thus a hollow space is provided around the plurality of functional elements 40, which include the IDT electrodes. In this configuration, surface acoustic waves propagate in a portion of the piezoelectric substrate 30 adjacent to that hollow space.
(13) A wiring pattern 42 to electrically connect the functional elements 40 is provided on the first surface 32 of the piezoelectric substrate 30. The wiring pattern 42 is electrically connected to metal pads 46 on a second surface 34, which is opposite to the first surface 32, of the piezoelectric substrate 30, with through electrodes 44 interposed therebetween. The through electrodes 44 extend through the piezoelectric substrate 30. The metal pads 46 are electrically connected to a wiring pattern 62 on the mounting substrate 60 with the terminal electrodes 50, such as solder bumps, for example, interposed therebetween.
(14) At least one support portion 25 preferably made of resin is provided on the first surface 32 of the piezoelectric substrate 30 inside the hollow space. The support portion 25 is used to prevent breakage of the functional elements 40 caused by contact between the cover portion 10 and functional elements 40 when the cover portion 10 is deformed by a pressure applied from the outside to the cover portion 10 in a manufacturing step. The support portion 25 divides the hollow space into a plurality of sections. The functional elements 40 are dispersedly disposed in the plurality of divided sections.
(15) When a dimension in a direction from the piezoelectric substrate 30 toward the cover portion 10 is expressed as “height,” the height of the support portion 25 in the first preferred embodiment is designed to be smaller than the height of the outer support layer 20 and larger than the height of each of the functional elements 40. That is, in the acoustic wave device 110 in the first preferred embodiment, a gap is provided between the support portion 25 and cover portion 10.
(16)
(17) The support portion 25# in the acoustic wave device 110# in
(18) When the acoustic wave devices 110 and 110# illustrated in
(19) For example, because a transmission circuit needs a large amount of power (current) to transmit radio waves to a predetermined distance, the amount of heat generated in a functional element embedded in the transmission circuit is larger than that in a functional element embedded in a reception circuit. When the functional element embedded in the transmission circuit is connected to a side near a power source (input side), a larger amount of current passes therethrough. Thus, among the plurality of divided sections, the element temperature and substrate temperature tend to easily increase in a section where the functional element through which the larger amount of current passes, in comparison with those in the other sections.
(20) In this case, when the support portion 25# dividing the space into the sections extends from the piezoelectric substrate 30 to the cover portion 10, as illustrated in
(21) In contrast, for the acoustic wave device 110 illustrated in
Variations of First Preferred Embodiment
(22) In the first preferred embodiment, the support portion 25 is described as being made of resin that is the same as or similar to the outer support layer 20, which supports the cover portion 10. The support portion 25 may have other structures.
(23)
(24) Referring to
(25) As illustrated in an acoustic wave device 110B in
(26)
(27) Furthermore, although not illustrated in the drawings, in a single acoustic wave device, the configurations of the support portion illustrated in
(28) The height of the entire support portion need not be smaller than that of the outer support layer. For example, as illustrated in a support portion 25C in
Second Preferred Embodiment
(29) In each of the first preferred embodiment and the variations thereof, the configuration in which the support portion in the hollow space is provided on the piezoelectric substrate 30 is described. In a second preferred embodiment, a configuration in which the support portion is provided on the cover portion 10 is described.
(30)
(31) Referring to
(32) Gas warmed by heat generated in the functional elements 40 can be moved to other sections through the gap between the support portion 25D and piezoelectric substrate 30. Therefore, local heating state can be reduced or prevented, and this results in improved electric power handling capability.
(33) In the second preferred embodiment, the support portion may also have the configurations of the variations of the first preferred embodiment.
(34) As described above, in the present preferred embodiment, the acoustic wave device having the WLP structure includes the support portion provided in the hollow space and having the height smaller than that of the outer support layer and larger than that of each of the functional elements. Thus, because the gap is provided between the support portion and cover portion or between the support portion and piezoelectric substrate, gas warmed in a section with a large amount of heat generated can be easily moved to other sections. Even if the cover portion is deformed by an external pressure in a sealing step, contact between the cover portion and functional elements can be reduced or prevented by the support portion. Consequently, the acoustic wave devices according to preferred embodiments of the present invention can both achieve the sealing-related handling capability and reduce the influence of local heat.
(35) While preferred embodiments of the present invention have been described above, it is to be understood that variations and modifications will be apparent to those skilled in the art without departing from the scope and spirit of the present invention. The scope of the present invention, therefore, is to be determined solely by the following claims.