Claims
- 1. A method of aligning a surface area of a first optical building element with a surface area of a second optical building element, comprising the steps of
selecting a material which when deformed behaves substantially plastically and with only a non-significant elastic regression, producing a carrier of the material, mounting the first optical building element and the second optical building element directly on the carrier with a first alignment between the surface area of the first optical building element and the surface area of the second optical building element, and thereupon deforming the carrier displacing the surface area of the first optical building element in relation to the surface of the second optical building element so that a fine alignment of the surface area of the first optical building element with the surface area of the second optical building element is achieved.
- 2. The method of claim 1, wherein, in the step of producing the carrier, the carrier is made to have substantially a plate shape.
- 3. The method of claim 2, wherein, in the step of mounting the first optical building element and the second optical building element the first optical building element and the second optical building element are mounted on and/or at one large since of the carrier.
- 4. The method of claim 1, comprising the additional step of producing, in the carrier, through-holes, in particular slots, at or around or partly around a region of one of the first optical building element and the second optical building element.
- 5. The method of claim 4, wherein, in the step of producing the through-holes the region is selected to be located to be the surface area of the respective one of the first optical building element and the second optical building element.
- 6. The method of claim 5, wherein, in a case where the first optical building element is an optical fiber having a longitudinal direction and in the step of producing the through-holes, the through-holes are made as slots extending substantially in parallel to the longitudinal direction of the optical fiber.
- 7. The method of any of claims 4-6, wherein, in the step of producing the through-holes, the through-holes are made to produce a weakened area at one of the surface area of the first optical building element and a surface area of the second optical building element.
- 8. A carrier for optical building elements to be mounted on the carrier, the carrier having substantially the shape of a plate or a sheet and the carrier being at least partly of a material which is plastically deformable but has a only non-significant or negligible elastic regression.
- 9. The carrier of claim 8, comprising a V-groove pressed or drawn in the carrier, the V-grooves being intended for attaching an optical building element being an optical fiber.
- 10. The carrier of claim 8, comprising through-holes made in a region in which an optical building element is to be mounted on the carrier.
- 11. The carrier of claim 8 for an optical building element comprising an optical fiber to be mounted thereon, the carrier having through-holes comprising slots extending substantially in parallel to a longitudinal direction of the optical fiber.
- 12. The carrier of claim 11, wherein the through-holes are made to produce a weakened area at a surface area of a first optical building element to be mounted on the carrier, the surface area being intended to be aligned with a surface area of a second optical building element to be mounted on the carrier.
- 13. The carrier of claim 8, wherein the carrier is copper plate having a high degree of purity.
- 14. The carrier of claim 13, wherein the copper plate contains at least 99 per cent (wt.) of copper.
- 15. An optical component comprising a carrier having substantially the shape of a plate, the optical component further comprising an optical fiber connected to a laser, an end portion of the fiber and the laser being mounted at a surface of the carrier and the carrier being of a material which is plastically deformable having only a non-significant or negligible elastic regression.
- 16. The optical component of claim 15, wherein the carrier comprises a V-groove pressed in the surface of the carrier, the optical fiber being attached in the V-groove.
- 17. The optical component of claim 15, comprising through-holes provided in the carrier in a region at an end segment of the optical fiber, the end segment being located at the laser.
Priority Claims (1)
| Number |
Date |
Country |
Kind |
| 9702345-1 |
Jun 1997 |
SE |
|
Parent Case Info
[0001] The present invention relates to optoelectrical components and in particular alignment of building elements used in optoelectrical components, such as alignment of an end of an optical fiber in relation to another building element of active or passive type, in particular a laser chip or package.