SAW DEVICE WITH IMPROVED THERMAL MANAGEMENT
20240421794 ยท 2024-12-19
Inventors
- Kamran CHEEMA (Apopka, FL, US)
- Bambang KUNARDI (Singapore, SG)
- Yu Jen CHONG (Singapore, SG)
- Chong Choon LEE (Singapore, DE)
Cpc classification
H03H3/10
ELECTRICITY
H03H9/02992
ELECTRICITY
International classification
Abstract
Aspects herein include minimizing hot spots on a filter chip by creating thermal radiators using mechano-acoustic structures and connection circuitry. A gradual increase of metal to wafer relation provides better heat dissipation and heat sinking. Shunt lines of a ladder type arrangement of SAW resonators comprise a broadened section. Resonators that are subsequent to each other in the series signal line are connected via a common busbar extending over a length of subsequent series resonators. A lateral extension of the common busbars represents a first section of a respective shunt line. A first shunt line section between a node and the parallel resonator of a shunt line comprises a section that is broader than the common busbar, the broadened section extending over the width of the parallel resonator. The first reflector of the parallel resonator that faces the laterally adjacent series resonator is formed from the broadened section.
Claims
1. (canceled)
2. A SAW filter device, comprising: a series resonator arranged in a series signal line; a shunt line connected to a node situated in the series signal line relative to the series resonator; and a parallel resonator arranged in the shunt line, wherein: the shunt line comprises a broadened section located between the series resonator and the parallel resonator, and a busbar of the series resonator and the broadened section are formed from a same metallization.
3. The SAW filter device of claim 2, wherein a busbar of the parallel resonator is formed from the same metallization as the busbar of the series resonator and the broadened section.
4. The SAW filter device of claim 2, wherein the parallel resonator comprises a reflector formed from the same metallization as the busbar of the series resonator and the broadened section.
5. The SAW filter device of claim 4, wherein the reflector is formed at least in part from the broadened section.
6. The SAW filter device of claim 4, wherein the reflector is positioned between the series resonator and the parallel resonator.
7. The SAW filter device of claim 2, wherein the parallel resonator has a length measured in a longitudinal direction corresponding to a wave propagation direction and a width measured in a transversal direction.
8. The SAW filter device of claim 2, wherein the series resonator is a first series resonator, the SAW filter device further comprising a second series resonator arranged in the series signal line, wherein the first series resonator and the second series resonator are connected via a common busbar extending over a length of the first series resonator and the second series resonator.
9. The SAW filter device of claim 8, wherein a lateral extension of the common busbar forms a first section of the shunt line.
10. The SAW filter device of claim 9, wherein the lateral extension of the common busbar forms a busbar of the parallel resonator.
11. The SAW filter device of claim 2, further comprising a plurality of series resonators arranged in the series signal line, the plurality of series resonators including the series resonator, wherein the plurality of series resonators are aligned one below the other in a line parallel to a transversal direction associated with a width of the plurality of series resonators, wherein reflectors of the plurality of series resonators are formed from a strip-type metallization extending over a combined length of the plurality of series resonators.
12. The SAW filter device of claim 2, further comprising a plurality of series resonators arranged in the series signal line, the plurality of series resonators including the series resonator, wherein the plurality of series resonators are arranged between a first node and a last node in the series signal line and are each cascaded by a series connection of two single resonators, and wherein respective reflectors of the plurality of series resonators are common to the two single resonators and extend over a total width of the two single resonators.
13. The SAW filter device of claim 2, wherein the series resonator is next to an input/output (I/O) terminal, and wherein a reflector of the series resonator, the busbar of the series resonator, and the I/O terminal are formed from the same metallization.
14. The SAW filter device of claim 2, further comprising a plurality of series resonators arranged in the series signal line, the plurality of series resonators including the series resonator, wherein each series resonator of the plurality of series resonators is cascaded by a series connection of a respective pair of single resonators, and wherein reflectors of each respective pair of single resonators are electrically isolated from each other.
15. The SAW filter device of claim 14, wherein the SAW filter device is a transmit filter, wherein an input/output (I/O) terminal of the transmit filter is a transmit terminal, and wherein the series resonator is next to the transmit terminal, is un-cascaded, and has a length that is at least a twofold length of remaining series resonators of the transmit filter.
Description
[0025] In the following the invention will be explained in more detail with reference to specific embodiments and the accompanied figures. The figures are schematic only and drawn to scale. Hence, neither exact relative nor absolute measures can be taken from the figures.
[0026]
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[0030]
[0031]
[0032]
[0033]
[0034]
[0035]
[0036]
[0037]
[0038] The first three series resonators RS1 to RS3 are twofold cascaded and each cascade comprises a series connection of two single resonators SR1, SR2 as shown in
[0039] Usually all circuitry of a known filter as shown in
[0040]
[0041] In the broadened section of each shunt line a first reflector REF1 for the respective parallel resonator RP is formed. Usually a reflector REF comprises a reflective grid embodied in a regular pattern of reflective metallic stripes. The respective second reflector REF2 of each parallel resonator RP may also be connected to the first section of the shunt line. Alternatively it may be electrically floating or preferably connected to the second busbar of the resonator and the second section SLS2 of the shunt line SL.
[0042] The reflectors REF of the series resonators are shown schematically only. The ones facing the second direction that is facing the shunt lines are preferably floating and not connected to an external or otherwise fixed potential. Further, cascades of single resonators SR may share the same reflector. The same is true for the reflectors facing to the first direction away from the shunt lines.
[0043]
[0044]
[0045]
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[0048]
[0049]
[0050]
[0051]
[0052] The invention has been explained with reference do different separate features. However, real filter devices can show single ones or more of the features realized in different and arbitrary combinations without leaving the scope of the invention.
LIST OF USED REFERENCE SYMBOLS
[0053] 1,2,3 example nos. [0054] AT antenna terminal [0055] BB busbar [0056] BBCN common busbar [0057] BBCN connecting busbar [0058] BS broadened section of first shunt line section [0059] GND ground terminal [0060] IO IO terminal [0061] LD longitudinal direction [0062] N node [0063] N1 first node in the series signal line next to antenna [0064] NS node that is connected to different shunt lines [0065] REF reflector [0066] REF1 first reflector of a parallel resonator [0067] RP parallel resonator [0068] RS series resonator [0069] SL shunt line [0070] SLS1 first shunt line section [0071] SM strip-type metallization [0072] SR single resonator [0073] TD transversal direction [0074] WBB width of busbar