Claims
- 1. An electro-optic modulator comprising a waveguide having a glassy polymer layer having a first refractive index and being disposed on a self-assembled superlattice (SAS) with an intrinsic polar microstructure and having a second refractive index that is approximately equal to said first refractive index at a predetermined wavelength.
- 2. An electro-optic modulator as recited by claim 1, wherein said glassy polymer layer is Cyclotene™ and wherein said second refractive index is approximately equal to 1.56.
- 3. An electro-optic modulator as recited by claim 1, wherein said glassy polymer layer has a first width and wherein said SAS has a second width that is greater than or equal to said first width.
- 4. An electro-optic modulator as recited by claim 4, wherein said first width is approximately equal to 4.0 μm.
- 5. An electro-optic modulator as recited by claim 1, wherein said SAS comprises a plurality of molecular chromophore fragments each consisting of a plurality of electron donating and accepting groups interconnected by a conjugated π-electron system and exhibiting a large molecular hyperpolarizability, said donating and accepting groups of one molecular chromophore fragment being connected to said donating and accepting groups of another molecular chromophore fragment by silicon-oxygen linkages to form an acentric layered structure exhibiting a large electro-optic coefficient.
- 6. An electro-optic modulator as recited by claim 1, wherein said glassy polymer is Cyclotene™ and wherein said predetermined wavelength is approximately equal to one of 1064 nm, 1300 nm and 1550 nm.
- 7. An electro-optic phase modulator comprising:
a substrate; a first electrode disposed on top of said substrate; a bottom cladding layer disposed on top of said first electrode having a first refractive index; a waveguide disposed on said bottom cladding layer and comprising:
a self-assembled superlattice (SAS) chemically bonded to said bottom cladding layer and having a second refractive index; and a first glassy polymer having a third refractive index approximately equal to said second refractive index at a predetermined wavelength; a second glassy polymer top cladding layer disposed on top of said SAS film and having a fourth refractive index; and a second electrode disposed on top of said top cladding layer.
- 8. An electro-optic phase modulator as recited by claim 7, wherein said SAS comprises a plurality of molecular chromophore fragments each consisting of a plurality of electron donating and accepting groups interconnected by a conjugated π-electron system and exhibiting a large molecular hyperpolarizability, said donating and accepting groups of one molecular chromophore fragment being connected to said donating and accepting groups of another molecular chromophore fragment by silicon-oxygen linkages to form an acentric layered structure exhibiting a large electro-optic coefficient.
- 9. An electro-optic phase modulator as recited by claim 7, wherein said first glassy polymer is Cyclotene™ and wherein said second refractive index is approximately equal to 1.56.
- 10. An electro-optic phase modulator as recited by claim 9, wherein said predetermined wavelength is approximately equal to one of 1064 nm, 1300 nm, and 1550 nm.
- 11. An electro-optic phase modulator as recited by claim 9, wherein said second glassy polymer is Cytop™ and wherein said fourth refractive index is approximately equal to 1.34.
- 12. An electro-optic phase modulator as recited by claim 7, wherein said first cladding layer is SiO2.
- 13. An electro-optic phase modulator as recited by claim 7, wherein said first and said second electrodes are gold.
- 14. A method of forming an electro-optic phase modulator on a substrate and having first and second electrodes, said method comprising the steps of:
providing a first cladding layer having a first refractive index on the substrate; providing a self-assembled chromophore superlattice (SAS) having an intrinsic polar structure and a second refractive index on the first cladding layer; providing a first glassy polymer having a third refractive index on the SAS, the third refractive index being approximately equal to the second refractive index at a predetermined wavelength; and providing a second glassy polymer second cladding layer having a fourth refractive index on the SAS and about the first glassy polymer.
- 15. A method as recited by claim 14, wherein the second and third refractive indices are greater than the first and fourth refractive indices.
- 16. A method as recited by claim 15, wherein the second and third refractive indices are approximately equal to 1.54.
- 17. A method as recited by claim 14, wherein the first glassy polymer is Cyclotene™ and wherein the third refractive index is approximately equal to 1.54.
- 18. A method as recited by claim 14, wherein the second glassy polymer is Cytop™ and wherein the fourth refractive index is approximately equal to 1.34.
STATEMENT REGARDING FEDERALLY SPONSORED RESEARCH AND DEVELOPMENT
[0001] The present invention was developed under grant DMR-9632472 provided by the National Science Foundation and grant N00014-95-1-11319. The United States Government has certain rights in this invention.
Continuations (1)
|
Number |
Date |
Country |
Parent |
09773724 |
Jan 2001 |
US |
Child |
10414263 |
Apr 2003 |
US |