Claims
- 1. In a light modulator comprising a source of coherent light, an optical waveguide, a plurality of electrodes disposed in said waveguide, optical input means disposed on one side of said electrodes and optical output means disposed on the other side of said electrodes, the improvement which comprises employing as said optical waveguide a crystal prepared by depositing a film of niobium oxide on one surface of a polished single crystal of lithium tantalate, annealing the single cyrstal of lithium tantalate so as to allow the niobium to diffuse into the crystal and cooling the crystal.
- 2. In a light modulator comprising a source of coherent light, an optical waveguide, a plurality of electrodes disposed on said waveguide, optical input means disposed on one side of said electrodes and optical output means disposed on the other side of said electrodes, the improvement which comprises employing as said optical waveguide a crystal prepared by depositing a film of niobium on one surface of a polished single crystal of lithium tantalate, oxidizing the niobium, annealing the crystal at an elevated temperature to allow the niobium to diffuse into the crystal, and cooling to room temperature.
- 3. A light modulator according to claim 2 wherein the deposited niobium film is from about 25 to 5,000 Angstroms thick.
- 4. A light modulator according to claim 2 wherein the annealing step is carried out at a temperature from about 1,050.degree. to 1,250.degree. C.
- 5. A light modulator according to claim 2 wherein the annealing step is carried out at a temperature from about 1,100.degree. to 1,200.degree. C.
- 6. A light modulator according to claim 2 wherein the annealing step is carried out in an atmosphere of argon and oxygen.
- 7. A light modulator according to claim 2 wherein the annealing step is carried out in an atmosphere of nitrogen and oxygen.
- 8. A light modulator according to claim 2 wherein the annealing step is carried out in air.
- 9. A light modulator according to claim, 2 wherein the niobium is oxidized at about 300.degree.-600.degree. C.
- 10. A light modulator according to claim 2 wherein the crystal is poled during the cooling step.
Parent Case Info
This application is a division of application Ser. No. 555,725, filed Mar. 6, 1975 which is a continuation-in-part of my copending application Ser. No. 442,844 filed Feb. 15, 1974, now abandoned, which in turn is a continuation-in-part of my copending application Ser. No. 434,408 filed Jan. 18, 1974, now abandoned.
Government Interests
The invention herein described was made in the course of or under a contract with the U.S. Government.
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Dec 1968 |
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3785717 |
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Jan 1974 |
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3837827 |
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Sep 1974 |
|
Non-Patent Literature Citations (4)
Entry |
Hammer et al., "Low Loss Single Mode Optical Waveguide", Applied Physics Letters, vol. 24, June 1, 1974, pp. 545-547. |
Tien et al., "Optical Waveguide Modes in Single-Crystalline LiNbO.sub.3 -LiTa O.sub.3 Solid-Solution Films", Appl. Physics Lett. vol. 24, May 1974, pp. 503-506. |
Minakata et al., "LiNb.sub.x Ta.sub.1-y O.sub.3 Optical Waveguiding Layer in LiTaO.sub.3 Applied Physics Letters, vol. 26, pp. 395-398, Apr. 1, 1975. |
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Divisions (1)
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Number |
Date |
Country |
Parent |
555725 |
Mar 1975 |
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Continuation in Parts (2)
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Number |
Date |
Country |
Parent |
442844 |
Feb 1974 |
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Parent |
434408 |
Jan 1974 |
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