Claims
- 1. A gyroscope comprising:
a piezoelectric substrate having a surface; a resonator transducer disposed on said surface, for creating a first surface acoustic wave on said surface; a pair of reflectors disposed on said surface, for reflecting said first surface acoustic wave to form a standing wave within a region of said surface between said pair of reflectors; a structure disposed on said surface within said region, wherein a Coriolis force acting upon said structure creates a second surface acoustic wave; and a sensor transducer disposed on said surface for sensing said second surface acoustic wave and providing an output indicative thereof.
- 2. The gyroscope of claim 1, wherein said sensor transducer is disposed orthogonally to said resonator transducer.
- 3. The gyroscope of claim 1, wherein said resonator transducer creates an electrical potential on said substrate, and said substrate converts said electrical potential into mechanical energy, thus forming said first surface acoustic wave.
- 4. The gyroscope of claim 1, wherein said structure is located at an anti-node of said standing wave.
- 5. The gyroscope of claim 1,
wherein said first surface acoustic wave causes said structure to oscillate along a z-axis, and wherein said Coriolis force is directed along a y-axis and is related to a rate of rotation of said substrate about an x-axis.
- 6. The gyroscope of claim 1,
wherein said structure is one of a plurality of structures disposed in an array within said region, wherein said first surface acoustic wave causes said plurality of structures to oscillate along a z-axis, and wherein said Coriolis force is directed along a y-axis and is related to a rate of rotation of said substrate about an x-axis.
- 7. The gyroscope of claim 6, wherein said x-axis and said y-axis comprise an x-y plane, and wherein said array is located in said x-y plane such that said Coriolis force, acting upon each of said plurality of structures, creates a plurality of said second surface acoustic waves that are coherently added.
- 8. The gyroscope of claim 6, wherein said first surface acoustic wave has a wavelength, and wherein said plurality of structures are spaced apart from one another with a periodicity of said wavelength.
- 9. The gyroscope of claim 6, wherein said second surface acoustic wave has a wavelength, and wherein said plurality of structures are spaced apart from one another with a periodicity of said wavelength.
- 10. The gyroscope of claim 1, wherein said piezoelectric substrate comprises a material selected from the group consisting of lithium niobate, lithium tantalate, lithium tetraborate, quartz, silicon, zinc oxide, zinc oxide film on a silicon substrate, diamond, and combinations thereof.
- 11. The gyroscope of claim 1, wherein said first surface acoustic wave has a wavelength, and wherein said resonator transducer comprises an inter-digital transducer (IDT) comprising fingers spaced apart with a periodicity of one half said wavelength.
- 12. The gyroscope of claim 1, wherein said first surface acoustic wave has a wavelength, and wherein said pair of reflectors are separated from each other by a distance of an integral number of one half said wavelength.
- 13. The gyroscope of claim 1, wherein said sensor transducer is a first sensor transducer, and wherein said gyroscope further comprises a secend transducer disposed on said surface and separated from said first sensor transducer by said region, for sensing said second surface acoustic wave and providing an output indicative thereof.
- 14. The gyroscope of claim 13, wherein a sum of said output of said first sensor transducer and said output of said second sensor transducer is processed to characterize said Coriolis force.
- 15. The gyroscope of claim 1, wherein said resonator transducer is a first resonator transducer, and wherein said gyroscope further comprises a second resonator transducer disposed on said surface and separated from said first resonator transducer by said region, for enhancing said first surface acoustic wave.
- 16. The gyroscope of claim 14, wherein said first and second resonator transducers are coupled to an RF signal source for initiating an oscillation of said first and second resonator transducers.
- 17. The gyroscope of claim 1, wherein said resonator transducer receives an RF signal that initiates an oscillation of said resonator transducer.
- 18. The gyroscope of claim 17,
wherein said RF signal is coupled from an antenna to a first port of a duplexer, and thereafter from a second port of said duplexer to said resonator transducer, and wherein said output of said sensor is coupled to a third port of said duplexer, and thereafter from said first port of said duplexer to said antenna.
- 19. The gyroscope of claim 1, wherein said first surface acoustic wave has a frequency in the range of 1 MHz to 5 GHz.
- 20. The gyroscope of claim 1,
wherein said sensor transducer is a first sensor transducer, and said region is a first region, wherein said gyroscope further comprises:
a second sensor transducer disposed on said surface orthogonally to said resonator transducer, for sensing a residual surface acoustic wave from a second region of said surface, and for providing an output indicative of said residual surface acoustic wave, and wherein a difference between said output of said first sensor transducer and said output of said second sensor transducer is processed to characterize said Coriolis force.
- 21. The gyroscope of claim 1,
wherein said sensor transducer is a first sensor transducer, and said region is a first region, wherein said gyroscope further comprises:
a second sensor transducer disposed on said surface orthogonally to said resonator transducer, for sensing a residual surface acoustic wave from a second region of said surface, and for providing an output indicative of said residual surface acoustic wave; a third sensor transducer disposed on said surface orthogonally to said resonator transducer and separated from said first sensor transducer by said first region, for sensing said second surface acoustic wave and providing an output indicative thereof; and a fourth sensor transducer disposed on said surface orthogonally to said resonator transducer and separated from said second sensor transducer by said second region, for sensing said residual surface acoustic wave and providing an output indicative thereof, wherein said output of said first and third sensor transducers are added to provide a combined output indicative of said second surface acoustic wave, wherein said output of said second and fourth sensor transducers are added to provide a combined output indicative of said residual surface acoustic wave, and wherein a difference between said combined output indicative of said second surface acoustic wave and said combined output indicative of said residual surface acoustic wave is processed to characterize said Coriolis force.
- 22. The gyroscope of claim 1,
wherein said resonator transducer is a first resonator transducer, said pair of reflectors is a first pair of reflectors, said region is a first region, and said sensor transducer is a first sensor transducer, wherein said gyroscope further comprises:
a second resonator transducer disposed on said surface for creating a third surface acoustic wave on said surface; a second pair of reflectors disposed on said surface for reflecting said third surface acoustic wave to form a second standing wave within a second region of said surface between said second pair of reflectors; a second sensor transducer disposed on said surface for sensing a residual surface acoustic wave from said second region, and providing an output indicative thereof; wherein a difference between said output of said first sensor transducer and said second sensor transducer is processed to characterize said Coriolis force.
- 23. A method for manufacturing a micro-elector-mechanical gyroscope, comprising:
providing a piezoelectric substrate; forming a pattern having a plurality of apertures therethrough; and fabricating, using said pattern, a plurality of features on said substrate, said features comprising:
a resonator transducer for creating a first surface acoustic wave on said surface; a pair of reflectors for reflecting said first surface acoustic wave to form a standing wave within a region of said surface between said pair of reflectors; a structure within said region, wherein a Coriolis force acting upon said structure creates a second surface acoustic wave; and a sensor transducer disposed orthogonally to said resonator transducer, for sensing said second surface acoustic wave.
- 24. The method of claim 23, wherein said step of fabricating comprises the steps of:
depositing a layer of metal on said pattern and through said apertures; and lifting off said pattern, thereby leaving said metal deposited through said apertures to define said features.
- 25. The method of claim 23,
wherein said step of forming said pattern comprises a preliminary step of depositing a layer of metal on said surface, and wherein said step of fabricating comprises the steps of selectively removing said layer of metal exposed within said apertures to define said features, and removing said pattern.
- 26. The method of claim 25, wherein said step of selectively removing comprises a step of etching.
- 27. The method of claim 26, wherein said step of etching comprises a step of reactive ion etching.
CLAIM OF PRIORITY FROM COPENDING PROVISIONAL APPLICATIONS
[0001] The present application is claiming priority of provisional application Serial No. 60/139,609, filed on Jun. 17, 1999, and provisional application Serial No. 60/172,475, filed on Dec. 17, 1999.
Provisional Applications (2)
|
Number |
Date |
Country |
|
60139609 |
Jun 1999 |
US |
|
60172475 |
Dec 1999 |
US |
Divisions (1)
|
Number |
Date |
Country |
Parent |
09594370 |
Jun 2000 |
US |
Child |
10309566 |
Dec 2002 |
US |