Claims
- 1. A ZnO based integrated tunable SAW device comprising a piezoelectric member, at least a first IDT disposed on a surface of said piezoelectric member, a quantum well structure engaging said piezoelectric member in a SAW path, a substrate for said piezoelectric member, and an electrode for said quantum well structure.
- 2. The ZnO based integrated tunable SAW device claimed in claim 1, wherein said piezoelectric member is comprised of zinc oxide.
- 3. The ZnO based integrated tunable SAW device claimed in claim 1, wherein said quantum well structure is comprised of a zinc oxide and magnesium oxide heterostructure.
- 4. The ZnO based integrated tunable SAW device claimed in claim 1, wherein said electrode is a patterned metal layer controlling electron conductivity in said quantum well structure.
- 5. The ZnO based integrated tunable SAW device claimed in claim 1, wherein said substrate is comprised of R-plane sapphire.
- 6. The ZnO based integrated tunable SAW device claimed in claim 5, wherein said R-plane sapphire substrate provides in-plane anisotropy in said piezoelectric member .
- 7. The ZnO based integrated tunable SAW device claimed in claim 1, wherein said substrate is comprised of R-plane sapphire and wherein quantum well structure comprises ZnO/MgxZn1-xO monolithically integrated on said substrate through a crystal growth technique.
- 8. The ZnO based integrated tunable SAW device claimed in claim 7, wherein said crystal growth technique is MOCVD.
- 9. A voltage-controlled oscillator, comprising the ZnO based integrated tunable SAW device claimed in claim 1 including a second IDT, an oscillator circuit being formed by said first IDT and said second IDT, whereby said piezoelectric member defines a tunable delay line in a feedback path of said oscillator.
- 10. An adaptive and tunable filter, comprising the ZnO based integrated tunable SAW device claimed in claim 1, said electrode controlling filter center frequency, bandwidth, bandshape and time delay control.
- 11. A zero-power remote wireless sensor system, comprising the ZnO based integrated tunable SAW device claimed in claim 1 including a further electrode for said quantum well structure, wherein said first IDT is connected to an antenna and is situated at a first side of said quantum well structure, a SAW reflector being situated at a second side of said quantum well structure, and a sensor connected to the electrodes and generating an electrical signal across the electrodes.
- 12. A fixed UV optical delay line operable in continuous wave and packet modes, comprising the ZnO based integrated tunable SAW device claimed in claim 1, wherein said first electrode is transparent and is disposed on said quantum well structure at a spacing from said first IDT, wherein the optical delay of said delay line is determined by the spacing between said transparent electrode and said first IDT.
- 13. The fixed UV optical delay line claimed in claim 12, wherein said optical delay is achieved when an optical signal is focused close to a side of said quantum well structure closest to said first IDT, said optical signal generating electron-hole pairs which are in turn trapped in the potential wells of a propagating surface acoustic wave launched from said first IDT, and after travelling in the quantum well structure combine under said transparent electrode to regenerate said optical signal, thus providing a predetermined optical delay.
- 14. A tunable optical delay line operable in packet mode, comprising a piezoelectric member, a first IDT and a second IDT disposed on a surface of said piezoelectric member, a quantum well structure engaging said piezoelectric member in a SAW path, a substrate for said piezoelectric member.
- 15. The ZnO based tunable UV optical delay line claimed in claim 14 in which the optical delay is achieved when an optical signal is focused close a first side of said quantum well, which generates electron-hole pairs which in turn are trapped in the potential wells of a propagating surface acoustic wave launched from IDT closest to first side of said quantum well, and after travelling in said quantum well combine when they collide with a counter-propagating surface acoustic wave launched from the second IDT, regenerating the optical signal and thus providing the optical delay, and the optical delay time is determined by the time in which the counter propagating surface acoustic wave packet is launched.
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] This application claims priority to Provisional Application Ser. No. 60/217,899, filed on Jul. 13, 2000 and entitled “Voltage Controlled Oscillator Using ZnO Based Tunable Surface Acoustic Wave Device”, Provisional application Ser. No. 60/217,895, filed on Jul. 13, 2000 and entitled “Adaptive and Tunable Filters Using ZnO Based Tunable Surface Acoustic Wave Device”, Provisional Application Ser. No. 60/217,893, filed on Jul. 13, 2000 and entitled “Zero-Power Remote Wireless Sensor Using ZnO Based Tunable Surface Acoustic Wave Device” and Provisional Application Ser. No. 60/217,894, filed on Jul. 13, 2000 and entitled “Fixed and Tunable UV Optical Delay Lines Using Acousto-Opto-Electronic Interaction in ZnO/MgxZn1-xO Heterostructure”.
Provisional Applications (4)
|
Number |
Date |
Country |
|
60217899 |
Jul 2000 |
US |
|
60217895 |
Jul 2000 |
US |
|
60217893 |
Jul 2000 |
US |
|
60217894 |
Jul 2000 |
US |