Claims
- 1. An optical storage system, comprising:a medium holder adapted to hold an optical storage medium at a specified position; an optical beam steering element disposed relative to said medium holder and having an optical steering plane to receive an optical beam and direct said optical beam to a desired direction by steering said optical steering plane; an optical head disposed in a path of said optical beam to couple optical energy to and from said optical storage medium, said optical head configured as a lens assembly with a first and second focal planes which includes a solid immersion lens, wherein said first focal plane is closer to said optical beam steering element than said second focal plane; and an imaging lens disposed between said optical beam steering element and said optical head to image said optical steering plane of said optical steering element to an image plane that is spaced from said first focal plane to form a pseudo telecentric imaging system formed by said imaging lens and said lens assembly of the optical head, a spacing between said image plane and said first focal plane being set at a value to achieve a substantially symmetric energy distribution in a reflected beam from said optical medium and said lens assembly.
- 2. A system as in claim 1, wherein said optical steering element comprises an electro-optic beam deflector.
- 3. A system as in claim 1, wherein said optical steering element comprises an acoustooptic beam deflector.
- 4. A system as in claim 1, wherein said optical steering element comprises a micro-machined actuator.
- 5. A system as in claim 1, wherein said optical steering element comprises a galvanometer, and a reflective surface engaged to rotate with said galvanometer, wherein said optical steering plane is a portion of said reflective surface.
- 6. A system as in claim 1, wherein said optical steering element comprises a galvanometer and a prism mounted on said galvanometer, and wherein said optical steering plane is a portion of a transmissive surface of said prism.
- 7. A system as in claim 1, wherein said optical head is positioned relative to said medium holder during a reading or writing operation to place said solid immersion lens from said optical medium by less than one wavelength of said optical beam.
- 8. A system as in claim 1, wherein said optical head is positioned relative to said medium holder during a reading or writing operation to place said solid immersion lens at a position from said optical medium to couple energy to or from said optical medium at least in part by evanescent fields.
- 9. A system as in claim 1, wherein said optical head is positioned relative to said medium holder during a reading or writing operation to place said solid immersion lens at a position from said optical medium by a distance greater than one wavelength of said optical beam to couple optical energy without evanescent coupling.
- 10. A near-field optical system, comprising:a medium holder adapted to hold an optical storage medium at a specified position; an optical steering beam element disposed relative to said medium holder, receiving an optical beam and directing said optical beam from an optical steering plane; an objective lens located relative to said optical beam steering element in a path of said optical beam; a near-field lens disposed between said objective lens and said optical storage medium and positioned from said optical storage medium by a spacing less than one wavelength of said optical beam, wherein said near-field lens and said objective lens collectively effects a lens assembly with first and second focal planes wherein said first focal plane is closer to said optical beam steering element than said second focal plane; and an imaging lens disposed between said optical steering element and said objective lens to image said optical steering plane of said optical steering element to an imaging location that is positioned away from said first focal plane by a spatial deviation to achieve a substantially symmetric energy distribution in an optical beam being reflected from said optical medium and transmitting through said lens assembly.
- 11. A system as in claim 10, wherein said lens assembly formed by said objective lens and near-field lens has a numerical aperture greater, than unity.
- 12. A system as in claim 10, wherein said near-field lens includes a solid immersion lens or a GRIN lens.
- 13. A system as in claim 10, further comprising an optical detector positioned relative to said an optical steering beam element.
- 14. A system as in claim 10, wherein said optical beam steering element includes a galvanometer that controls a direction of said optical steering plane.
- 15. A system as in claim 10, wherein said medium holder is removably engaged to said optical storage medium.
Parent Case Info
This application claims the benefit of the U.S. Provisional Application No. 60/077,662, filed on Mar. 11, 1998.
US Referenced Citations (10)
Provisional Applications (1)
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Number |
Date |
Country |
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60/077662 |
Mar 1998 |
US |