Claims
- 1. A magneto-optic modulator for modulating light, the modulator comprising:a superconducting ground plane; a magneto-optic material on the superconducting ground plane; a microwave microstrip line on a side of the magneto-optic material opposite the superconducting ground plane; a first light coupler for coupling carrier wave light into the magneto-optic material; and a second light coupler for coupling the carrier wave light out of the magneto-optic material.
- 2. The magneto-optic modulator of claim 1, wherein the magneto-optic material comprises EuSe.
- 3. The magneto-optic material of claim 2, wherein the EuSe is a monocrystalline film.
- 4. The magneto-optic modulator of claim 1, further comprising:a delay arm; a beam splitter for diverting a portion of the carrier wave light away from the first light coupler and into the delay arm; and a beam recombiner for combining the carrier wave light from the second light coupler with the carrier wave light from the delay arm.
- 5. The magneto-optic modulator of claim 4, wherein the delay arm imposes a phase delay of π on the carrier wave light passing through the delay arm.
- 6. A superconducting hybrid circuit comprising:a superconducting ground plane; superconducting circuitry on the superconducting ground plane, the superconducting circuitry having a signal output; a magneto-optic material on the superconducting ground plane; a microwave microstrip line on a side of the magneto-optic material opposite the superconducting ground plane; a signal line for carrying a signal from the signal output to the microwave microstrip line; a first light coupler for coupling carrier wave light into the magneto-optic material; and a second light coupler for coupling the carrier wave light out of the magneto-optic material.
- 7. The superconducting hybrid circuit of claim 6, wherein the second light coupler comprises an optical fiber for carrying the carrier wave light out of the superconducting hybrid circuit.
- 8. The superconducting hybrid circuit of claim 6, wherein the superconducting circuitry comprises a single-flux-quantum logic system.
REFERENCE TO RELATED APPLICATION
The present application claims the benefit of U.S. Provisional Application No. 60/269,290, filed Feb. 16, 2001, whose disclosure is hereby incorporated by reference in its entirety into the present application.
STATEMENT OF GOVERNMENT INTEREST
The work leading to the present invention was supported by U.S. Office of Naval Research Grant No. N00014-00-1-0237. The Government has certain rights in the present invention.
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|
Number |
Date |
Country |
|
60/269290 |
Feb 2001 |
US |