Claims
- 1. A method of assembling an optical device package from an optical device, a first section and a second section, the optical device having an input interface and an output interface, the first section and second section being secured to the input interface and the output interface, respectively, the output interface having at least one output port communicating with a corresponding second section port of the second section and the input interface having a least one input port communicating with a corresponding first section port of the first section, the method comprising the steps of:
a) aligning said at least one input port of the optical device with said first section port of the first section by adjusting a position and/or orientation of at least one of the first section and the optical device b) attaching the first section to the optical device; c) aligning said at least one output port of the optical device with said second section port of the second section by adjusting a position and/or orientation of the optical device, with the first section attached, relative to the second section; and d) attaching the second section to the optical device.
- 2. A method according to claim 1, wherein step a) is accomplished by:
a1) aligning in coarse alignment the at least one input port with the first section port using a first alignment process; and a2) aligning in fine alignment the at least one input port with the first section port using a second alignment process.
- 3. A method according to claim 2, wherein step al) is accomplished by aligning one corner of the optical device with a corresponding corner of the first section and translating the optical device along at least one translational axis by a predetermined distance.
- 4. A method according to claim 2, wherein step a2) is accomplished by:
a2-1) passing an optical signal through the optical device using the first section; a2-2) receiving the optical signal at a detector, the optical signal being emitted from the at least one output port; and a2-3) adjusting the position of the optical device to maximize an intensity of the received optical signal.
- 5. A method according to claim 1, wherein step b) is accomplished by
b1) applying an adhesive between the optical device and the input means; and b2) curing the adhesive.
- 6. A method according to claim 1, wherein step c) is accomplished by:
c1) aligning in coarse alignment the at least one output port with the second section port using a first alignment process; and c2) aligning in fine alignment the at least one output port with the second section port using a second alignment process.
- 7. A method according to claim 6, wherein step cl) is accomplished by aligning one corner of the optical device of the optical device with a corresponding corner of the second section and translating the optical device along at least one translational axis by a predetermined distance.
- 8. A method according to claim 6, wherein step c2) is accomplished by:
c2-1) passing an optical signal through the optical device c2-2) receiving the optical signal at the second section, the optical signal being emitted to the second section by the at least one output port; and c2-3) adjusting the position of the optical device to maximize an intensity of the optical signal.
- 9. A method according to claim 1, wherein step d) is accomplished by:
d1) applying an adhesive between the optical device and the second section; and d2) curing the adhesive.
- 10. A method according to claim 2, wherein step a1) is accomplished using camera means for providing top and side views of interfaces between the optical device and the first and second sections, respectively.
- 11. A method according to claim 10, wherein the camera means comprises mirror means adjacent the interfaces and a single camera, and the camera is moved to different positions to provide one of the top and side views directly and the other of the top and side views via the mirror means.
- 12. A method according to claim 1, wherein the optical device is placed on a robot platform capable of adjusting a position and orientation of the optical device.
- 13. A method according to claim 12, wherein the robot platform is capable of adjusting the position of the optical device along at least one of the 3 translational axes (x, y, and z axes).
- 14. A method according to claim 12, wherein the robot platform is capable of adjusting the orientation of the optical device about at least one of the three rotational axes (roll, pitch, yaw).
- 15. A method of assembling an optical device package, the method comprising:
a) holding a first section of the optical device package stationary; b) aligning an optical device with the first section by adjusting a position and orientation of the optical device; c) attaching the optical device and the first section together; d) holding a second section of the optical device package stationary; e) aligning the optical device with the second section by adjusting the position and orientation of the optical device; and f) attaching the optical device and the second section together.
- 16. Apparatus for assembling an optical device package comprising an optical device, a first section and a second section, the optical device having an input interface and an output interface, and the first section and second section being secured to the input interface and the output interface, respectively, and the output interface having at least one output port communicating with a corresponding second section port of the second section and the input interface having a least one input port communicating with a corresponding first section port of the first section, the apparatus comprising:
a first stationary platform carrying the first section of the optical device package; a second stationary platform carrying the second section of the optical device package; an adjustable platform carrying the optical device, the adjustable platform being positioned between the first stationary platform and the second stationary platform, wherein the adjustable platform is adjustable to align the optical device with the first section and the second section in turn by adjusting a relative displacement between the optical device and either of the first section and the second section.
- 17. Apparatus according to claim 16, wherein the adjustable platform is a robot platform capable of adjusting position and orientation along at least one of 3 translational axes (x, y, and z axes) or about at least one of 3 rotational axes (roll, pitch, yaw).
- 18. Apparatus according to claim 17, further including camera means for providing a top view and a side view of interfaces between the optical device and the first and second sections, respectively.
- 19. Apparatus according to claim 18, wherein the camera means comprises mirror means
adjacent the interfaces and a single camera movable to different positions to provide one of the top and side views directly and the other of the top and side views via the mirror means.
- 20. Apparatus according to claim 16, wherein the apparatus further includes a subsystem for use in providing fine alignment between the first section and the optical device by passing light through the first section and optical device, detecting light leaving at least one output port of the optical device and monitoring intensity of the detected light while adjusting alignment of the first section and the optical device.
- 21. Apparatus according to claim 20, wherein the subsystem includes a video camera for detecting an optical signal emitted from the plurality of output ports.
- 22. Apparatus according to claim 21, wherein the subsystem is mounted on a movable platform which can be placed between the optical device and the second section and then removed.
Parent Case Info
[0001] This application claims priority from U.S. Provisional application No. 60/364,131 filed Mar. 15, 2002.
Provisional Applications (1)
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Number |
Date |
Country |
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60364131 |
Mar 2002 |
US |