Claims
- 1. A variable retarder comprising:
a first substrate coated with a transparent conductor; a porous, optically anisotropic thin film positioned on said transparent conductor with its optic axis pointing in a direction that falls between a plane that is parallel with said first substrate and a normal to said first substrate; said porous thin film imbibed with a liquid crystal; a second substrate coated with a transparent conductor disposed on said liquid crystal-imbibed porous thin film; and a surface of said transparent conductor of said second substrate being in contact with said liquid crystal-imbibed porous thin film.
- 2. The variable retarder as defined in claim 1 wherein said porous thin film is fabricated by vacuum deposition in which the evaporant is incident on said first substrate at an oblique angle of incidence.
- 3. The variable retarder as defined in claim 1 wherein said liquid crystal is a nematic liquid crystal.
- 4. A switchable mirror comprising:
a first substrate coated with a transparent conductor; a plurality of porous, optically anisotropic thin film layers positioned on said transparent conductor; each of said plurality of porous thin film layers having an optic axis pointing in a direction that falls between a normal to said first substrate and a plane that is parallel with said first substrate, and said optic axis of each of said plurality of porous thin film layers having a component that lies in said plane that is parallel with said first substrate; said optic axis component of each of said plurality of porous thin film layers having an azimuthal angular orientation about said normal to said first substrate; said plurality of porous thin film layers being arranged according to said azimuthal angular orientation of said optic axis component; said plurality of porous thin film layers imbibed with a liquid crystal; a second substrate coated with a transparent conductor disposed on said plurality of said liquid crystal-imbibed porous thin film layers; and a surface of said transparent conductor of said second substrate being in contact with an adjacent said liquid crystal-imbibed porous thin film layer.
- 5. The switchable mirror of claim 4 wherein each of said liquid crystal-imbibed porous thin film layers has a thickness h given by h=λc/(4{overscore (n)}2DOFF·cosθ) where λc is a wavelength in vacuum of light incident on said mirror, {overscore (n)}2DOFF is an average index of refraction of each of said liquid crystal-imbibed porous thin film layers in the absence of an applied electric field, and θ is an incidence angle in the liquid crystal-imbibed porous thin film layer of said incident light, as measured from said first substrate normal.
- 6. The switchable mirror of claim 5 wherein said azimuthal angular orientation of said optic axis component of each of said plurality of porous thin film layers of adjacent liquid crystal-imbibed layers is 90 degrees.
- 7. The switchable mirror of claim 4 wherein said azimuthal angular orientation of said optic axis component of successive said liquid crystal-imbibed porous thin layers are angularly offset from one another so as to spiral about said first substrate normal in a left- or right-handed sense.
- 8. The switchable mirror of claim 4 wherein at least one of said liquid crystal-imbibed porous thin film layers is fabricated by vacuum deposition in which the evaporant is incident on said first substrate at an oblique angle of incidence.
- 9. The switchable mirror of claim 4 wherein said liquid crystal is a nematic liquid crystal.
- 10. A method of fabricating a switchable optical component comprising the steps of:
providing a first substrate with a transparent conductor; positioning at least one porous, optically anisotropic thin film on said transparent conductor with its optic axis pointing in a direction that falls between a plane that is parallel with said first substrate and a normal to said first substrate; imbibing said at least one porous thin film with a liquid crystal; providing a second substrate with a transparent conductor disposed on said liquid crystal-imbibed porous thin film; and contacting a surface of said transparent conductor of said second substrate with said liquid crystal-imbibed porous thin film.
- 11. The method as defined in claim 10 further comprising the step of fabricating said porous thin film by vacuum deposition in which the evaporant is incident on said first substrate at an oblique angle of incidence
- 12. The method of claim 11 wherein said liquid crystal is a nematic liquid crystal.
- 12. The method of claim 11 wherein said switchable optical component is a variable retarder.
- 13. The method of claim 11 wherein said switchable optical component is a switchable mirror.
- 14. The method of claim 13 further comprising the step of providing a plurality of porous, optically anisotropic thin film layers positioned on said transparent conductor
- 15. The method of claim 14 further comprising the steps of:
having said optic axis component of each of said plurality of porous thin film layers having an azimuthal angular orientation about said normal to said first substrate; and arranging said plurality of porous thin film layers according to said azimuthal angular orientation of said optic axis component.
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] This application claims priority of U.S. Provisional Application Ser. No. 60/258,959 filed Dec. 29, 2001 entitled SWITCHABLE MIRRORS AND RETARDERS BASED ON IMBIBED NANO-COLUMN FILMS which is incorporated herein by reference.
STATEMENT OF GOVERNMENT INTEREST
[0002] This invention was made partially with U.S. Government support from the National Science Foundation under Grant No. DMI-9860582. The U.S. Government has certain rights in the invention.
Provisional Applications (1)
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Number |
Date |
Country |
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60258959 |
Dec 2000 |
US |