Claims
- 1. A fiber array, comprising:
a plurality of optical fibers; and a glass plate including a plurality of holes in each of which there is secured one of the optical fibers.
- 2. The fiber array of claim 1, wherein said plurality of holes are formed by:
placing a photomask over a photosensitive glass plate; exposing said photomask and selected regions in said photosensitive glass plate to an ultraviolet light; heating said exposed photosensitive glass plate to form therein a plurality of opal regions and a plurality of glass regions; and etching said heated photosensitive glass plate until said plurality of opal regions are etched away to form the holes in which there is secured one of the optical fibers.
- 3. The fiber array of claim 1, wherein said plurality of holes are formed by:
placing a photomask over a photosensitive glass plate; exposing said photomask and selected regions in said photosensitive glass plate to an ultraviolet light; heating said exposed photosensitive glass plate to form therein a plurality of opal regions and a plurality of glass regions; etching said heated photosensitive glass plate until said plurality of opal regions are etched away to form oversized holes in said etched photosensitive glass; filling the oversized holes with a moldable material; and drilling the moldable material in the oversized holes to form the holes in which there is secured one of the optical fibers.
- 4. The fiber array of claim 1, wherein said glass plate including the secured optical fibers is mechanically set and aligned to a microlens array to form a collimator array.
- 5. The fiber array of claim 4, wherein said glass plate and said microlens array have matching coefficients of thermal expansion.
- 6. A fiber array, comprising:
a plurality of optical fibers; and a glass plate including a plurality of holes in each of which there is secured one of the optical fibers, wherein the holes were formed by etching away a plurality of opal regions within an exposed and heated photosensitive glass which after the etching became said glass plate.
- 7. The fiber array of claim 6, wherein said glass plate including the secured optical fibers is mechanically set and aligned to a microlens array to form a collimator array.
- 8. The fiber array of claim 7, wherein said glass plate and said microlens array have matching coefficients of thermal expansion.
- 9. A fiber array comprising:
a plurality of optical fibers; and a glass plate including a plurality of holes in each of which there is secured one of the optical fibers, wherein the holes were formed by etching away a plurality of opal regions within an exposed and heated photosensitive glass which after the etching became said glass plate that included a plurality of oversized holes which were filled with a moldable material that was then drilled to form the holes.
- 10. The fiber array of claim 9, wherein said glass plate including the secured optical fibers is mechanically set and aligned to a microlens array to form a collimator array.
- 11. The fiber array of claim 10, wherein said glass plate and said microlens array have matching coefficients of thermal expansion.
- 12. The fiber array of claim 9, wherein said moldable material and said glass plate have matching coefficients of thermal expansion in the range of ±0.5×10−7.
- 13. The fiber array of claim 9, wherein said moldable material is a polymer or a graphite.
- 14. A method for fabricating a fiber array, said method comprising the steps of:
forming a plurality of holes in an exposed and heated photosensitive glass plate; and securing an optical fiber in each hole of the exposed and heated photosensitive glass plate which at this point resembles said fiber array.
- 15. The method of claim 14, further comprising the steps of mechanically setting and aligning said fiber array to a microlens array to form a collimator array.
- 16. The method of claim 15, wherein said fiber array and said microlens array have matching coefficients of thermal expansion over the −40° C. to 85° C. range.
- 17. A method for fabricating a fiber array, said method comprising the steps of:
forming a plurality of holes in a photosensitive glass plate, said forming step further includes the steps of:
placing a photomask over a non-exposed photosensitive glass plate; exposing said photomask and selected regions in said non-exposed photosensitive glass plate to an ultraviolet light; heating said exposed photosensitive glass plate to form therein a plurality of opal regions and a plurality of glass regions; and etching said heated photosensitive glass plate until said plurality of opal regions are etched away to form the holes; and securing an optical fiber in each hole of the etched photosensitive glass which after the etching step became a glass plate that resembles said fiber array.
- 18. The method of claim 17, further comprising the steps of mechanically setting and aligning said fiber array to a microlens array to form a collimator array.
- 19. The method of claim 18, wherein said fiber array and said microlens array have matching coefficients of thermal expansion over the −40° C. to 100° C. range.
- 20. A method for fabricating a fiber array, said method comprising the steps of:
forming a plurality of holes in a photosensitive glass plate, said forming step of forming further includes the steps of:
placing a photomask over a non-exposed photosensitive glass plate; exposing said photomask and selected regions in said non-exposed photosensitive glass plate to an ultraviolet light; heating said exposed photosensitive glass plate to form therein a plurality of opal regions and a plurality of glass regions; etching said heated photosensitive glass plate until said plurality of opal regions are etched away to form oversized holes; filling the oversized holes with a moldable material; and drilling the moldable material in the oversized holes to form the holes; and securing in each hole of the drilled photosensitive glass plate which after the etching step became a glass plate that resembles said fiber array.
- 21. The method of claim 20, further comprising the steps of mechanically setting and aligning said fiber array to a microlens array to form a collimator array.
- 22. The method of claim 21, wherein said fiber array and said microlens array have matching coefficients of thermal expansion over the −40° C. to 100° C. range.
- 23. The method of claim 20, wherein said moldable material and said glass plate have matching coefficients of thermal expansion in the range of ±0.5×10−7.
- 24. The method of claim 20, wherein said moldable material is a polymer or a graphite.
- 25. The method of claim 20, wherein said moldable material is soft enough to drill without sticking to a precision drill and without causing excessive wear and tear to the precision drill.
- 26. A collimator array, comprising:
a lens array; and a fiber array including a plurality of optical fibers and a plurality of holes in each of which there is secured one of the optical fibers.
- 27. The collimator array of claim 26, wherein said plurality of holes are formed by:
placing a photomask over a photosensitive glass plate; exposing said photomask and selected regions in said photosensitive glass plate to an ultraviolet light; heating said exposed photosensitive glass plate to form therein a plurality of opal regions and a plurality of glass regions; and etching said heated photosensitive glass plate until said plurality of opal regions are etched away to form the holes.
- 28. The collimator array of claim 26, wherein said plurality of holes are formed by:
placing a photomask over a photosensitive glass plate; exposing said photomask and selected regions in said photosensitive glass plate to an ultraviolet light; heating said exposed photosensitive glass plate to form therein a plurality of opal regions and a plurality of glass regions; etching said heated photosensitive glass plate until said plurality of opal regions are etched away to form oversized holes in said etched photosensitive glass; filling the oversized holes with a moldable material; and drilling the moldable material in the oversized holes to form the holes.
- 29. The collimator array of claim 26, wherein said glass plate including the secured optical fibers is mechanically set and aligned to a microlens array to form a collimator array.
- 30. The collimator array of claim 26, wherein said glass plate and said microlens array have matching coefficients of thermal expansion.
- 31. A fiber array, comprising:
a plurality of optical fibers; and a plate including a plurality of holes in each of which there is secured one of the optical fibers, wherein said plate and a lens array have matching coefficients of thermal expansion such that said plate and the lens array contract and expand in the same manner when there is a change in temperature.
- 32. The fiber array of claim 31, wherein said plate including the secured optical fibers is mechanically set and aligned to a microlens array to form a collimator array.
- 33. The fiber array of claim 31, wherein said fiber array and said microlens array have matching coefficients of thermal expansion over the −40° C. to 100° C. range.
RELATED APPLICATION
[0001] This application claims the benefit of U.S. Provisional Patent Application No. 60/364,700, filed Mar. 14, 2002, entitled Fiber Array And Methods For Fabricating The Fiber Array.
Provisional Applications (1)
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Number |
Date |
Country |
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60364700 |
Mar 2002 |
US |