Claims
- 1. An optical micro-module comprising:
a submount having an optical fiber mounted thereon; a lens holder attached to the submount, the lens holder having a mounting surface; and a lens comprising:
a mounting surface attached to the lens holder mounting surface such that, when the lens mounting surface is attached to the lens holder mounting surface, the lens is positioned at the desired focal length from the optical fiber; and a curved section having an optical axis that is aligned with the optical fiber.
- 2. An optical micro-module as defined in claim 1, wherein the lens has an aspheric surface.
- 3. An optical micro-module as defined in claim 1, wherein the lens comprises a silicon microlens.
- 4. An optical micro-module as defined in claim 1, wherein the lens mounting surface has a metal coating thereupon and the metal coating is soldered to the lens holder, thereby affixing the lens to the lens holder.
- 5. An optical micro-module as defined in claim 1, wherein:
the submount comprises a silicon substrate having a silicon v-groove thereon; and the optical fiber is attached to the silicon v-groove.
- 6. An optical micro-module as defined in claim 1, further comprising a micro isolator attached to the submount.
- 7. An optical micro-module as defined in claim 6, wherein the micro isolator prevents backreflections from the optical fiber from propagating back to the lens.
- 8. An optical cable assembly comprising the optical micro-module as defined in claim 1.
- 9. A transmitter optical subassembly comprising:
a light emitter; a submount in mechanical communication with an optical fiber receptacle; a lens holder attached to the submount, the lens holder having a mounting surface; a microlens comprising:
a mounting surface; and a curved section having an optical axis; wherein the microlens mounting surface is attached to the lens holder mounting surface and the optical axis is aligned with the optical fiber receptacle such that, when an optical fiber is connected to the optical fiber receptacle, an optical signal can be effectively created by the light emitter, received by the microlens, and coupled into the optical fiber.
- 10. An optical micro-module as defined in claim 9, further comprising a micro isolator attached to the submount.
- 11. An optical micro-module as defined in claim 10, wherein the micro isolator prevents backreflections from an optical fiber from propagating back to the microlens.
- 12. An optical micro-module as defined in claim 9, wherein the microlens comprises a silicon microlens having an aspheric surface.
- 13. An optical micro-module as defined in claim 9, wherein the microlens mounting surface has a metal coating thereupon and the metal coating is soldered to the lens holder mounting surface, thereby affixing the lens to the lens holder.
- 14. A transmitter optical micro-module comprising:
a transmitter sub-module comprising:
a light emitter mounted upon a substrate; a lens holder mounted upon the substrate adjacent the light emitter, the lens holder having a mounting surface; a lens attached to the mounting surface of the lens holder at a desired focal length from the light emitter for receiving an emitted optical signal from the light emitter and collimating the optical signal; and a back monitor positioned adjacent a back facet of the light emitter for monitoring the wavelength and/or power of the light emitted by the light emitter; and a light coupling sub-module comprising:
a submount in mechanical communication with an optical fiber receptacle; a lens holder attached to the submount, the lens holder having a mounting surface; and a microlens comprising:
a mounting surface; and a curved section having an optical axis; wherein the microlens mounting surface is attached to the lens holder mounting surface and the optical axis is aligned with the optical fiber receptacle such that, when an optical fiber is connected to the optical fiber receptacle, an optical signal can be effectively created by the light emitter, received by the microlens, and coupled into the optical fiber.
- 15. An optical micro-module as defined in claim 14, wherein the back monitor comprises:
a reflective surface that receives light from a back facet of the light emitter and redirects the light; a first lens that receives a first portion of the redirected laser light reflected by the reflective surface, wherein the first lens collimates the laser light; a second lens that receives a second portion of the redirected laser light reflected by the reflective surface, wherein the second lens collimates the laser light; a filter layer that receives the collimated light from at least one of the first lens and the second lens; and a detector selected from the group consisting of a power sensor and a wavelength sensor, wherein the detector receives light through the filter to detect a signal and wherein at least one of the light power or light wavelength is determined from the signal.
- 16. An optical micro-module as defined in claim 14, further comprising a micro isolator attached to the submount to prevent backreflections from interfering with the operation of the light emitter.
- 17. An optical micro-module as defined in claim 14, wherein the microlens mounting surface has a metal coating thereupon and the metal coating is soldered to the lens holder mounting surface, thereby affixing the microlens to the lens holder.
- 18. An optical micro-module as defined in claim 14, wherein the microlens comprises an aspheric silicon microlens.
- 19. A method of assembling an optical micro-module, comprising:
providing a substrate comprising at least one micro-module submount, each submount comprising a top surface and at least one additional surface, the top surface comprising at least one silicon v-groove for receiving an optical fiber such that a received optical fiber may have a predetermined terminus; providing a microlens having a mounting surface and a curved section having an optical axis, the microlens having a known curvature; mounting a lens holder to the at least one additional surface of the submount at a position selected based upon the curvature of the microlens; aligning the microlens optical axis with a corresponding silicon v-groove; attaching the microlens to the lens holder, wherein the microlens is aligned at a desired focal length from the predetermined optical fiber terminus by the position of the lens holder; and separating the substrate into individual micro-modules.
- 20. A method of assembling an optical micro-module as defined in claim 19, further comprising the step, prior to at least the step of separating the substrate into individual micro-modules, of attaching a micro isolator in the optical path between the microlens and the silicon v-groove.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application claims the benefit of U.S. Provisional Application No. 60/483,741, filed Jun. 30, 2003, which is hereby incorporated herein by reference.
Provisional Applications (1)
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Number |
Date |
Country |
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60483741 |
Jun 2003 |
US |