Claims
- 1. A surface acoustic wave filter comprising:
- a piezoelectric substrate;
- a plurality of interdigital transducers formed on said piezoelectric substrate and arranged along a surface wave propagation direction, said plurality of interdigital transducers forming a surface acoustic wave filter part having input and output sides and a pass band; and
- a one-port SAW resonator which is not located along said surface wave propagation direction and which has at least one interdigital transducer, said one-port SAW resonator being connected in series with one of said input and output sides of said surface acoustic wave filter part, an antiresonance frequency of said one-port SAW resonator being set at a frequency level higher than said pass band of the surface acoustic wave filter part.
- 2. A surface acoustic wave filter in accordance with claim 1, wherein said one-port SAW resonator is formed on said piezoelectric substrate.
- 3. A surface acoustic wave filter in accordance with claim 1, wherein said piezoelectric substrate is formed by a 36.degree. Y cut--LiTaO.sub.3 substrate, said interdigital transducer of said one-port SAW resonator has a plurality of electrode fingers which overlap each other by a fixed overlap distance and said interdigital transducer of said one-port resonator is so structured that the following equation is satisfied: ##EQU3## wherein f.sub.0 (MHz) represents the resonance frequency of said one-port SAW resonator, N represents the number of pairs of electrode fingers, and A (.mu.m) represents said overlap distance.
- 4. A surface acoustic wave filter in accordance with claim 1, wherein said piezoelectric substrate consists of 64.degree. Y cut--LiNbO.sub.3, said interdigital transducer of said one-port SAW resonator has a plurality of electrode fingers which overlap each other by a fixed overlap distance and said interdigital transducer of said one-port resonator is so structured that the following equation is satisfied: ##EQU4## wherein f.sub.0 (MHz) represents the resonance frequency of said one-port SAW resonator, N represents the number of pairs of electrode fingers, and A (.mu.m) represents said overlap distance.
- 5. A surface acoustic wave filter in accordance with claim 1, wherein said one-port SAW resonator is connected to said surface acoustic wave filter part to be in series with said input or output side of said surface acoustic wave filter part.
- 6. A surface acoustic wave filter device in accordance with claim 1, wherein said one-port SAW resonator is a first one-port SAW resonator and wherein said surface acoustic wave filter device further comprises a second one-port saw resonator, said second one-port SAW resonator being connected in series between said first one-port SAW resonator and said one of said input and output sides of said surface acoustic wave filter part.
- 7. A surface acoustic wave filter in accordance with claim 1, further comprising a second one-port SAW resonator, said second one-port SAW resonator being connected in series with the other of said input and output sides of said surface acoustic wave filter part.
- 8. A surface acoustic wave filter in accordance with claim 1, wherein said surface acoustic wave filter part is formed by an IDT type surface acoustic wave filter.
- 9. A surface acoustic wave filter in accordance with claim 1, wherein said surface acoustic wave filter part is formed by a two IDT type surface acoustic wave filter.
- 10. A surface acoustic wave filter in accordance with claim 1, wherein said surface acoustic wave filter part is formed by a three IDT type surface acoustic wave filter.
- 11. A surface acoustic wave filer in accordance with claim 9, further comprising a pair of reflectors formed on said piezoelectric substrate, said pair of reflectors being located on respective sides of said plurality of interdigital transducers and along said surface wave propagation direction.
- 12. A surface acoustic wave filter in accordance with claim 10, further comprising a pair of reflectors formed on said piezoelectric substrate, said pair of reflectors being located on respective sides of said plurality of interdigital transducers and along said surface wave propagation direction.
- 13. A surface acoustic wave filter in accordance with claim 6, wherein each of said one-port SAW resonators includes a pair of comb electrodes each of said comb electrodes having a plurality of electrode fingers and a bus bar, and one of said pair of comb electrodes of said first one-port SAW resonator and one of said pair of comb electrodes of said second one-port SAW resonator sharing a common said bus bar.
- 14. A surface acoustic wave filter, comprising:
- a piezoelectric substrate;
- a surface acoustic wave filter part provided on said piezoelectric substrate and having input and output sides and a pass band, said surface acoustic wave filter part including a plurality of interdigital transducers and a pair of reflectors located on respective sides of said plurality of interdigital transducers and along a surface wave propagation direction of said plurality of interdigital transducers;
- a one-port SAW resonator which is not located along said surface wave propagation direction and which has at least one interdigital transducer, said one-port SAW resonator being connected in series with one of said input and output sides of said surface acoustic wave filter part, an antiresonance frequency of said one-port SAW resonator being set at a frequency level higher than said pass band of said surface acoustic wave filter part.
- 15. A surface acoustic wave filter in accordance with claim 14, wherein said one-port SAW resonator is provided on said piezoelectric substrate.
- 16. A surface acoustic wave filter in accordance with claim 14, wherein said piezoelectric substrate is formed by a 36.degree. Y cut--LaTaO.sub.3 substrate, and said interdigital transducer of said one-port SAW resonator has a plurality of electrode fingers which overlap one another by a fixed overlap distance and said interdigital transducer of sid one-port SAW resonator is so structured that the following equation is satisfied: ##EQU5## wherein f.sub.0 (MHz) represents the resonance frequency of said one-port SAW resonator, N represents the number of pairs of electrode fingers, and A (.mu.m) represents said overlap distance.
- 17. A surface acoustic wave filter in accordance with claim 14, wherein said piezoelectric substrate is formed by a 64.degree. Y cut--LaTaO.sub.3 substrate, and said interdigital transducer of said one-port SAW resonator has a plurality of electrode fingers which overlap one another by a fixed overlap distance and said interdigital transducer of said one-port SAW resonator is so structured that the following equation is satisfied: ##EQU6## wherein f.sub.0 (MHz) represents the resonance frequency of said one-port SAW resonator, N represents the number of pairs of electrode fingers, and A (.mu.m) represents said overlap distance.
- 18. A surface acoustic wave filter in accordance with claim 14, wherein said one-port SAW resonator is a first one-port SAW resonator and wherein said surface acoustic wave filter further comprises a second one-port SAW resonator, wherein said second one-port SAW resonator is connected in series between said first one-port SAW resonator and said one of said input and output sides of said surface acoustic wave filter part.
- 19. A surface acoustic wave filter in accordance with claim 14, further comprising a second one-port SAW resonator connected in series with the other of said input and output sides of said surface acoustic wave filter part.
- 20. A surface acoustic wave filter in accordance with claim 14, wherein said surface acoustic wave filter part includes two IDTs.
- 21. A surface acoustic wave filter in accordance with claim 14, wherein said surface acoustic wave filter part includes three IDTs.
- 22. A surface acoustic wave filter in accordance with claim 18, wherein each of said one-port SAW resonators includes a pair of comb electrodes, each of said comb electrodes having a plurality of electrode fingers and a bus bar, and one of said pair of comb electrodes of said first one-port SAW resonator and one of said pair of comb electrodes of said second one-port SAW resonator share a common said bus bar.
Priority Claims (1)
Number |
Date |
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Kind |
5-169002 |
Jul 1993 |
JPX |
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Parent Case Info
This is a continuation of application Ser. No. 08/271,195, filed on Jul. 7, 1994, now abandoned.
US Referenced Citations (10)
Foreign Referenced Citations (6)
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Date |
Country |
0600705 |
Jun 1994 |
EPX |
52-10944 |
Feb 1977 |
JPX |
0154805 |
Mar 1989 |
JPX |
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Oct 1991 |
JPX |
0222512 |
Oct 1991 |
JPX |
2116307 |
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GBX |
Non-Patent Literature Citations (2)
Entry |
"IEEE Transactions on Microwave Theory and Techniques", Hikita et al. Minature Saw Antenna Duplexer for 800 MHz Portable Telephone Used In Cellular Radio Systems. vol. 36, No. 6 Jun. 1988. |
Co-pending U.S. Patent Application No. 08/272151 English Translation of Japanese Patent 52-109044. |
Continuations (1)
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Number |
Date |
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Parent |
271195 |
Jul 1994 |
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