Claims
- 1. A surface acoustic wave (SAW) element with an piezoelectric substrate, wherein for launching a surface acoustic wave into an acoustic channel wherein at least one interdigital transducer (IDT) is arranged in a first direction on the surface of the substrate and a reflector is arranged on the same surface in the interior of the acoustic channel and is oriented such that it reflects the surface acoustic wave in a second direction opposite to the first direction, and wherein the reflector is divided laterally into at. least two areas which each open up a subchannel, and at least one area is offset with respect to the direction of the acoustic channel.
- 2. A SAW element according to claim 1, wherein the offset is about λ/8, and wherein λ is the wavelength generated by the interdigital transducer (IDT) at a center operating frequency of the SAW element.
- 3. A SAW element according to claim 1, wherein the areas surrounding the corresponding subchannels have equal apertures.
- 4. A SAW element according to claim 1, wherein a double reflected echo signal is compensated due to the additional acoustic path |λ/8*4|=/2 and the corresponding phase shift of 180° between the waves in the subchannel in which the areas of the reflector are offset.
- 5. A SAW element according to claim 1, wherein the reflector is usable as a calibration reflector.
- 6. A SAW element according to claim 1, wherein the transducer is bidirectional and is able to emit the surface acoustic waves with the same amplitudes to opposite directions.
- 7. A SAW element according to claim 6, wherein at least one further reflector is arranged in the acoustic channel at the side opposite to the transducer, wherein the further reflector is divided laterallyinto at least two areas which each open up a subchannel, and at least one area is offset with respect to the direction of the acoustic channel.
- 8. A SAW element according to claim 7, wherein the reflectors arranged on opposing surfaces of the interdigital transducer are divided in the lateral direction into two areas having equal apertures and one of said areas has an offset in the direction of the IDT or away from the IDT which offset is λ/8, wherein λ is the wavelength generated by the IDT at the center operating frequency of the SAW element.
- 9. A SAW element according to claim 8, wherein the roundtrip echo signal generated by one single reflection on two reflectors arranged on both sides of the transducer is attenuated due to the 180° phase shift between the surface acoustic waves propagating in the two subchannels.
- 10. A SAW element according to claim 7, wherein a second reflector (39.2) is arranged in the acoustic channel in a greater distance from the IDT than the first reflector, wherein both reflectors are divided into two areas having an equal aperture and the upper and the lower areas of the first reflector (39.1) are offset by the distance |Δ1| along the acoustic channel away from the transducer (+x direction: offset Δ1=+|Δ1| or towards the transducer (−x direction: offset Δ1=|Δ1|), whereas the corresponding area of the second reflector (39.2) is offset by the distance |Δ2|.
- 11. A SAW element according to claim 10, wherein the offset Δ1=|Δ1|=λ/8 and Δ2=−|Δ2|=−λ/16.
- 12. A SAW element according to claim 10, wherein at least one reflector does not comprise an offset between the areas.
- 13. A SAW element according to claim 10, wherein the reflectors are formed as short-circuited, or open electrodes or electrodes connected in groups and made of a metal and which are arranged periodically with periodic distances of λ/2, λ or multiples of λ/2, wherein short-circuited electrodes may comprise additional connections.
- 14. A SAW element according to claim 13, wherein a plurality of transducers are provided which are arranged in different acoustic channels and are electrically connected with each other.
- 15. A SAW element according claim 14, wherein either the transducers, the reflectors or both are weighted, by the number of electrodes or their aperture.
- 16. A SAW element according to claim 15, wherein the reflectors are suited for encoding tag data due to their position in time or the time delay value of the reflected response.
- 17. A SAW element according to claim 16, wherein all reflectors have an initial delay Tinit and all reflectors are arranged in a distance from the corresponding IDT which is greater than a predetermined minimum value Linit=2×Tinit/vSAW, wherein VSAW is the velocity of the surface wave.
- 18. A SAW element according to claim 17, wherein in a plurality of the acoustic channels formed by the transducers one or more reflectors having a transmittance of more than 10% are placed and the reflectors generate response signals having exactly the same delay.
- 19. A SAW element according to claim 18, wherein at the end of an acoustic channel and close to an edge of the piezoelectric substrate there is provided means for preventing parasitic reverse reflections of the SAW element through the edge of the substrate, by absorption, scattering or inclined reflection of the wave.
- 20. A SAW element according to claim 13 wherein the electrodes are made of a metal selected from the group consisting of Al and Au and the reflectors are divided laterally perpendicular to the acoustic channel.
Priority Claims (1)
Number |
Date |
Country |
Kind |
1157/96 |
May 1996 |
CH |
|
RELATED APPLICATION
[0001] This application is a divisional application of our copending application Ser. No. 09/180,409, filed Jan. 4, 1999, now allowed, which application is an USA National Stage Application under 35 U.S.C. §371 of PCT Application No. PCT/EP97/02339, filed May 7, 1997, claiming priority from Swiss Application No. 1157/96, filed May 7, 1996.
Divisions (1)
|
Number |
Date |
Country |
Parent |
09180409 |
Jan 1999 |
US |
Child |
10139184 |
May 2002 |
US |